{"id":5667,"date":"2023-08-16T12:36:40","date_gmt":"2023-08-16T12:36:40","guid":{"rendered":"https:\/\/sewascaffoldingpalu.com\/?p=5667"},"modified":"2023-12-27T20:28:08","modified_gmt":"2023-12-27T20:28:08","slug":"symbolic-artificial-intelligence-wikipedia","status":"publish","type":"post","link":"https:\/\/sewascaffoldingpalu.com\/?p=5667","title":{"rendered":"Symbolic artificial intelligence Wikipedia"},"content":{"rendered":"<p><h1>Code Generation by Example Using Symbolic Machine Learning SN Computer Science<\/h1>\n<\/p>\n<p><img decoding=\"async\" class='wp-post-image' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"307px\" alt=\"symbolic machine learning\"\/><\/p>\n<p><p>We show that the resulting system \u2013 though just a prototype \u2013 learns effectively, and, by acquiring a set of symbolic rules that are easily comprehensible to humans, dramatically outperforms a conventional, fully neural DRL system on a stochastic variant of the game. Creativity is a compelling yet elusive phenomenon, especially when manifested in visual art, where its evaluation is often a subjective and complex process. Understanding how individuals judge creativity in visual art is a particularly intriguing question. Conventional linear approaches often fail to capture the intricate nature of human behavior underlying such judgments.<\/p>\n<\/p>\n<p><a href=\"https:\/\/www.metadialog.com\/\"><\/p>\n<figure><img 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alt='https:\/\/www.metadialog.com\/' class='aligncenter' style='display:block;margin-left:auto;margin-right:auto;' width='403px'\/><\/figure>\n<p><\/a><\/p>\n<p><p>Thus, the search for mappings which are consistent with a given set of examples can be restricted to those mappings which are plausible for code generation. Symbolic AI\u2019s adherents say it more closely follows the logic of biological intelligence because it analyzes symbols, not just data, to arrive at more intuitive, knowledge-based conclusions. It\u2019s most commonly used in linguistics models such as natural language processing (NLP) and natural language understanding (NLU), but it is quickly finding its way into ML and other types of AI where it can bring much-needed visibility into algorithmic processes. And unlike symbolic AI, neural networks have no notion of symbols and hierarchical representation of knowledge. This limitation makes it very hard to apply neural networks to tasks that require logic and reasoning, such as science and high-school math.<\/p>\n<\/p>\n<p><h2>Machine learning benchmarks<\/h2>\n<\/p>\n<p><p>Natural language understanding, in contrast, constructs a meaning representation and uses that for further processing, such as answering questions. Programs were themselves data structures that other programs could operate on, allowing the easy definition of higher-level languages. B.M.L. collected and analysed the  and implemented the models, and wrote the initial draft of the Article.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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dh3K12Riu4W4a\/nzSZ7KjThjxZEbbZ+m0sNf58R77rTUjWtBLtBvuVQ4hiAghDrZnEhkbebju04232H71la51TOQ05gOTeXeAQAlYcPF6mdXU6tYvRFbnplPjkIdYPDjbdvvbW1+fcrLBNtY5Q5oaGFthrbW+7w8F5PQbNhupLs28HOHBpHcGN8sxVlh2FMjlbK90hiF+uMIBlDbXu1rw7iBc3NhqWkDTdwOMdjlR16yTqZe7cbRv6xrWuIHIaXPje\/wWINBJUTuLn5QSB7TieIFyGgczc2uNCvSIqqNtM2cwRvZdrpDJE572w5h1pDr5w9rMxaSBZwGgGiwuBVzRI3qjlblAjle0kBo0zuDQSXutc24k68UpZm5cP17DM+Lu9vcanDdgo2jtEFxtlD3Sb\/7zXMY654ZFY7ewVBpmxyxiaONzWtdIMzYTuZd0eSbq3atzdZZtgLHcsxS43VudZ0jQLW1yOaTpq5pBuy+a7TY2y8V6jsXLK6PK76YEGOQNabGN2h7Ly4XG8HmAtmOfZ\/TqZHgtWlT9\/R\/weXUeKuipxaLqjaXrWh7nQkNcGtBa4yFhaQ4OObL6h0sSdd+jnjt3uYXkB7+r6km9i5r5IpG7h2sszHAD1gw6Zil9ocCMHpMjXOdBHXSUctraB8MFQyQN3dozPD2n6wFhqs5g2Gwtnp+qkmFSZ25XAtt2jYF+a2lyTu11TsuGc8aal08mSOSMZtV18H6TxakWdkZqtdIxxiaXjtZe14jf571lqodopEF2Z0tJO9iww5miZmYlsIO9WjYOKTJblNRKmZ2rCWLNFfV9Dc3CXfSaK6fCznSdmKx2DesjLBqSvQsdi0ssbXMtdMOpo6URajquBUxkzeCVigT9NDoqtIz6iai9ivnYog+wVw+mSL6ElJe7FRlfUqZJddV8nen5sJKVqIE7GqGuUa2KaGMXv3qwghCrS+x1TLawJOVOxkLfQlqIrKlxAKwqKu6pa2ZVimaIXZAxtyvk8eikpRxXFY7RXURrnvRXPC5AUrguLKGXZ8sonqYqGRLaIIZEtImJFA5t1BSTP6Y\/6Y8I\/wBp4d\/zkH40f6Y8I\/2nh3\/OQfjX8ymwImphld4H7knke8w8xH9a6adrmte0hzXAOa4G4c1wuCCNCCNQV+Jv\/iDO\/wCs6L\/wJ\/8A2JF+xNhf+x0n\/haf\/wDExfkP9P2nviVGeVD\/AOvKl4lcqGcSjuz82wFPwSIp6YJkUy0rG2KlmR1DMnGaqCngVjFGr8kzSyo5jiU4gXcaYjCbDAhPProLxUiZhp7JmJqmc0LQsKZSeqkxaSLkoX6HVWQZolMUiu244LLlw1uhEc1sahk0CljOqq8NkuLFW9PClI0xbLOmebL5UxXXVI1MFuqmyYypnOE01intq5bUsx4Bt9d1rtv8Lr7SMS+3X\/YqocoHnwsDr7t6rZR5bmkedYq70WCpgNrzwU1juuXkOcRyy5ZAOV2rB11bmsAALXFxvOuhvx5a8labdYm6eVpsdGMYW63u1tgNw9W1zpvLuQtVz0BMbZLDLcsLgRo8WOXnfKWnz7kyClTS8G9tJJsRc38816D0b4US0EC7nusBz4DU8Nd689a0b+AXsez8rBStY0OEhAzyWP0YA9RvDMd7idwAG8lZsh0dAvXfejN7bgGpYxjg+NmWOR1uyZXPILWOuc0ZOQZrNzag3GVW9Ni7IgQ8ga63Pakfx03kDnz8CuZMPa4ZbFocQTe19CCCLcQRcHgrp+Ax1L+spxHAWARTNIc9\/WsHaec7szWyaPaN2Ui10zFNNV4LzxzWTZXffwZTGNq5X6Njaxl+yXNBdccdCLX3aX3KfBoJCS4F1rAOOoF3GxDbm+4jVbui6MiSHveXAc2hoHu4+9dbUxsY30OnyvqZmlgAI+iD9Ouk9kMBLxfVzgAOJDpOXDuVjo+GTk+v6steg6TNRw59SY82upIJO8nfoVTbXbIw01QHyN\/6HUuyskvZtJUH\/Vu9mCa5LTuY4EaAi2nwXCBSiJubssY1gGg9UW0H53rWzYzEYndaA+NrQS3Lmc6xuLNGrnX0FtdbJWNLozqZsDlCNb1Ri8O2NgFiMvduJPgVqcO2ijpey1zXPAJbAx7TI8gaAN0tc2GY2AvqRZY3aINqWs6qmNM+NxzRhwb1kZHqysiPVl97He4jUX1snNi\/R4+wyJkbvrWaBr4aJvO4ehD0MpwqaXw7\/fzN23ZsVGGzQuyipqTJPNl9UVMhzixIu4MsyMO0JDBoNw\/M79lq0y2ga589OM+RpaHNDHC+hIzFrvZ1sfL9MUmJFmoNvzvuk48GviFLXQ6dcXx1AsNHdW7XuDgL35+K3YJxnDgPMa3DLDNyLDolFXJTXrS3rG9nIGOa9otcdYXE3JFjpp3lWGL4WN9lrpnDXmbeQ3JGsiupmkuhhwal8Rj6SCxVjAU3JSEcEU8SwTk7OhkyqRwW3UFVCrLqFHLHoVaL4jG2ed7TtssZOzM6y3+1tESL96zNFQa+KfP0mzFnUMdlfDRKeOFXTqVLy01lnlKzA5cbtiYgXcNIpwxSRFRjdss5UiCWm0WexWAarWVB0WL2jnsfetcYi4ztmbxqhu023rPRPsvQoqTM26xuL0GVxV5wT6HY0eZL0sQfKo6eLMb8F8jjJOVW7KcAKiiaMk0nsV0uiQebpitkubBRQsS31LJUrYu8KOynqAojuSpbFou0QPKieVJMUsXKjA+SIYFy9y+QSKklsJy3R9YVM2ySD1LHIro5TZ6vQdOuMMY2NlfI1jGtY1vUUhs1oAaLmnJNgALkkrN7abYVVbIyWtmdUSRs6tjnMiZlZmLstomMae0SbkE671l4nqcOVoxXgrKb8jMZTTCqxr0zDImJC22WEblOyRItepmPTEhbHA9dskSD5l1BMmxQplxFIpc6Upym2MTIiZDdK9OxQ3CrG6K8onghWlBCk9yu9DsU9Su1X2uKQimsVzc6Skb9PPZl\/GFIRqlYJEx1iyuQjJnpjlMVLiMYfG5hAc14LXNJsHAg3B8VFAnaR2ovw1RGVSRheo9Vn5urWmOYtOpYdM31tNHHvI15cVVsnNsnAuvbmbWGm5azpahtVOIjextgASNHAcW8wBYe4LJMi3cyRbxJ0v3Jsm06PT42pwTJ6drm2fYAtILb2IuDcGx323+4L0\/YuoApGa3N3XJOt3G5vxvc6+9ee7SUOQ3Fy0EtcSc3baSDe2gvvAWi6PJCWlvDN7tUvIuyOhopOGWpfA22z7etOtiGmxPPW2\/ktlJhMJLXEETNAAlie6J9t+UlhGZov6rszQeCqMPpMjGWGp3\/AHpinrO0Ae6\/K3+Spi23OpmpUjQzYQXgB0s7m77OqJGad\/VFmb\/FdZeXBxE90kIbGAdLNFjvLidxNzqTe6stqNoOpiLrjMQGtF95WDftBI89W250APcTc33amxF\/fdPUeY\/cQ9RDAk6VsrtrsTAJeWieZ9yHva4lnA5LuOUD2W2FkmcZqpI2Rtzgh1gGAkk6C+mvZB+K1+F4CwP+mzTPOVwjbwzdm0rj2WAkhupAvxF1rzWMiYJX1OH0UdzHZr45Jrh+VzQyK73FpGoDjYam1lfhijPPjm+KclG+3f5LcyWD4bicVnlry0g9p7de7RuoHeRw86zH5akjrLZHg3zDTUHcRuLSBx3K42i2\/pmskdDPXOc0gRv6pjGSE27TWPs9sY1vnLXG2g1uu8CqKqppJJKhzXNy\/R9mxJOpJcOHIe9SpRlcaIlhlFXGctvKaNt0cYi6opmSO0OrXeLTY2Pfb7lqcAxbK58bbFwOZvIuHePeFhOjKsy0bY2kdkkOLbXve9grHCpAZg71SC0utprvPu3b0zTLhaMWqfMTvwe1NN2tdzAPwTVLFdVeD1zXwtLdLDKRxBG\/wVzhh0XQlHY8mnwzpEVdTaKla3Wy0la\/RUlKy5JWDPSQ+eaiRkeijLeCeDUnKdVnh1L4sl9Shx2luCsrJAB7lva2C4KytdS62Tsu6DNloq8nFKyQ3VjLHwUUugSRMc9FRXtsEvA5SYrMk6F91fCty\/Msfn3LB7W8+S307eysjtBS3BWripBGW9iOzVaHM7xoq\/auG\/aHDemsBpsjjyOisMYhBaRzV4ZL3NePJUtjLYbSgi53nik8deWiw3lXEIy6FUWMy3JRN7HQwy4plZHH5pyCmXVLT6XO9Es9glJbWPyTcnSK\/EYrFIOcm6ye6RKTPcfjuK3IJyoWxkp9kF0wKayTKVC8uZRKswpeVtlcTsSU8CrxCI5vJWOC5aU1kXr\/AETdCDK2lp6uWvZSCorX0McRpXTOfKI3SMDHtmaC52U9lzWgBrjmvYFnEktzGk3sjyKElMsXre2XQmymhpZRiEMzZcSOF1Lm08rWUtQ0yB9u058zY+re11mtuQLGxuLut\/R4k9KoIYKrPBWsqHmono5qR9O2ly9aZKWZwlIcXt6u5ZmzDc2zzZZI+SsscjwiRykhlX6X2I2FoJcIxGnZWxPgdilDHFiTqN4f9KKLLEyIkyjNK8QklzWgue51mgrPVHRw6mw\/Hqd\/osrqXEMPg9INMTUWkfTlroZDL9C1zJ2l0dnb5m5jmBFllXQh4nVni0RKYa1e0bbdAno0NY+KtZVz0T6YSU7aZ0TstUWNiu50z2h5LiQ0Fwyt1LS6wh6SOhR9FSvqOv651PJDHVx+jSwsjdO1pYYJnktqWBz2RlzALEm9iC0Xjmi+jFSxTXY8bfEU3QwphsKbp4lpTM7ZPSxJ5jFDEFOHK6FSOZW6J7DjoknuTmHvTX\/SZ5DFazRV7oNQreQaKMxLjaqXqKRzcJ3EzQJmJqGs0TMDVhcjJly2NU4sFcYBhheQeF96p2u3L0fZRgDQtelxqctx3s3TrPlqXQoukDYls1HNFZucsJjc76rxq05raajW3BfjvE4C17mEFrmuLSDvBBsR4gr9\/VQaRY6gr8pfpNYBHDVskhaGMmju4NtbrGkgm3AuBHkVv1eO8drsezjpOCFwWxRNoPSo2ujtd4+kA0AmY3tNN\/a1eDyKtth4MjGbs2c5r+NteWjSsRsZjroJQ5ozMeQ17L2vr2SDuD2k3B8QdCvUtrGCKokiYR2bAmwALrAvsOWa4CwYldmp5Yyqf93R\/wAmzr7ANPdx79w8TZVdNKwHfx5aanh4buCRpK7rY7X7YFt9je2niQR+bJqKl7Lnka2sR4fWA77W3cVZJF8km9yt6WsKc6KKoY7MyEuErRfQO\/1n+G1veqWhjmbFmpYw9z8wLiQ3LxB7R48DuW2paxpbJA8dmVuRwOmga5p8wT5BZLZypdD9HLoGmwfoWygEgHgRe28q\/C+G0UhkjzbkSYThlRLEYZbQMlFpQHMPWjPm+kc1xe+2nHKco4LSYZ0VUjbl75Da9j2WN39m9m20bv7W\/kp5692XNAxmbLe9rkX3WAHPn8lV4vgtXOY88oaCLua27rHQ2ygE77AC3NTjxxfb5nZya+MI1CG\/nb9TUdTh8YAAhBYBq4B7jw3WIJNtTcq7xbFmPgJjDWtDSb5QAcrSfDnv0WKw\/YzK\/rJWPc7RzescGg\/4RmceeoG5aLbTDiWdU1oDCNWx6k2GoJ3gW0WlY33OZn10ssfUYnovqy2El1wJJM+gFmggny3W9yusJqy6oLG3zPLA3+846ffoO5VbSGxMiZZpdxIB7LQBqLkgA9\/FP9GLs1c2S4LY5Wix0JIIF7HQm17DmNNEzFipo42bNUGfofC8F6mNsYNzcuceJcTc8eeluAsOCvKOLRVW0e0EcbrHtuGpaLaHkTwKiwja0vc1rYx2iALk8fduC1OE5R4qPPucFPqaeowpxb9UX5uCrW0gaSAWuI35SHWPI23Ffi3pEdMK6saJJms6+RzG9bMGFjnnWNt7Fl7gEC2i9n\/RzwB4oXO9KrKcPlc8Mipo3sduGdr5YJC+9tSCBp7zjy6Xqm6f38R+TGnG0e0zNVY9puiOzGnPU1Tv+8lpo8o73ZIWWbzJsO8KhqZMSjNxDR1kR1a+GZ8Ejm8LRyNfGT\/vAFmWncd1JP7+AhRa3NTNFosxikHaNlxP0gMjAFXTVlJf60kJli8TNTmWNo73Fq5oMdp5+1BPDMD\/AGcjXe6wNx4JmSEkt0M1D9KK+ansqyvatJVwqorYFmMUN2YTHHlO4LFoExjFEpKJtgm4eptXQZqGaLK4zxWlq5dFj8ck3psuhWWSmK3C69YJaKPRPYa21wUrE6YxZNyix2MiypGUeuYrZ4vECFQ1LbAk+K1tnSw5aKyfQKmqG31Wdx\/a1xcQw5Wg20FyfNO7GY31sgik1LtGutbXfY+KROcbq9zfiyKO7QzK1EEGlytBiOCWGiUpaPRJk6GPOpdBQQcQpXM0VrFQaKKaiWaVvoZZbsoamNJOYVdvpion06XuXlC1sZthXquwHSwKWkoKY05kNFiv6zziUNEg6mWHqcvVnKfpM2e53btV5Mwr0j+g0X6iixNpmdVSYn6CIhldGWGJ725IxH1plc9rWizyDewbcrU67mZX2NbSdOIb1VqS5jx2oxmzpgQ5tR6SDT26rR7BUXE2ozMBy8rif9IYNnopIKSQR0r63rGVFW6eSoirnB0jTI6O7HNeMzfWaAGsHZC8uxLowxKKWngkoqhs1Vm9HZZrjLlbmeAWOc1pY3tODy0tbcmwF1BL0d4i2qdRGjm9LZCagwdgu6gHKZWkPLHszHLdjnagjeCBKhB\/7ByyG8g6T6WKnnpKOhfBTy19DWxtdVGUxijdSudGS+MvJlNOTmL3ZTJxAATW0nTCJ2Yqz0ZzP1nV0VSD1wPU+iClBYR1Qz5\/Rj2uzbPuOXXI4f0R4s8lrKCdxa90brOhs17BdzXO63K0gW3m1yALk2TsWwpdQU00bKt1dPiElD1Do2tguxslmMe4B3pGeMtLXO0tIC1uUOdZKH2\/vwVbyVRsdqOmrrv1qWU7onYj6CWO64O9HdRZbOI6odZmLQbdm3eluljpdbXQZBTywzyvifUPNbUSQExNDQ2GlLhCxriA83boRezn\/SDE7Q7BV9O2J1RSTxCeXqIbhpMk1yBE1rHOdncQcoIGcAluYaqHbHYWvpGdbV0stPH1jYg95YWmRzDI1oLHuzXaCbi4FnAm4IV4Y4WvpuLlKbTX7FfA9PROVDR1CtIXrSZmixa9BmSuZQzvToIU0SVNbZPYHIXblVYdh5kdruXoeA4W1oFgtDqqEzV7I5p6MkJpmFlXlNThOwwhY5aaEnbFPStmfiwkpqPBytHDCE5HEELRY\/Ap6P3mWZghWgw1rmgWKeaQmWkWV1pYx\/pRbT4nilcWBq3AXsXdzRc+4Lybpa2UlrCZPReqDWOyyyytY8u0DSWND7Mub2cQToNBdeuUc9jZVnSnQPkopBEM0jSx7LEgnI4OcNNTdoItxWiMo8HBL\/Z9J9ne0MOTStS8brz9GfjHEaZzHuY+2ZhynLqNOR4+KvcHxN8sgjeXOe8WaeJc0XBJPdcJnbAhxJZHLGXavZkIa08bHU6nWxKp8Fq3RyRS5XWjeLusbb9eFvVXHlhlCTSuvgcKU48Wz2s01BXPieC4EEHjuOvE7lscKxthNySDa+UnxBtrrv8AhdV20kMc1zHl7Qva4sb2NxyusJVRPidqHCx0J4jlcaH3JNq9jXJyxqn0PScVe4EOj7ZOgAO\/gdOYzHwsl6TFxL2Xhrcoy33OOpsDpwBuOdtN5WYwrHMzhfS1r8Nxtz0WmjwhrtQ6xJJvzOUWIP1RYW960wYh1LoO0LWsdmbIS3KbW3E23Xdvtvv3jktrsrtASBfLcsNxusR4667\/AMheX4phdQ1ufKS062aWn4Ak7vu7lSMxaYeq17huN2m45i4HxUrhjuW501se945jrc4IBu3sncbWtuuOR3310WX2n2tDY2EkEnKRrrcG41O7dqBzIXncO1EjnZmtlLrAZeH7QJPDhfkPJ\/DcBdLIJKlzQ1pB6oE6DkSRqd19\/BX5q7EO5JpF3gpc8PqH6MEeSMm448RutqB33W26KcEdHA2eTQl7pbEHV5ALGXI+oHNcbW9W3NZCDEGyyNiZ\/VMcA4DRpt6rORufgCvWtrW9XRUozfWle8a636vtW\/ZLmtt+2t+mkpSSZzNdBxxNr73FXVBJJNyb778eJWr2Ykih6maocc0sjY6eJty97nG18o1IAu4nc1oJO5eZ4xifV05fxNgL8yuOiHavraiSqnOZzfoacHdHG31i3k57hqeQHJdHK01wnn8WOvU+xoem7YSrr6iQtdCxtHeGFrGkPfG8MfeRxNr3sAALCx5pzok2AxKKFrTXTRBlw2C0ckQbe9rPYSBfgCFsKLbKKWq6yL1ZB1UndIzcT4g28lrMa2hgpYzNUSNiYOJO\/kAN5J4AarFlbpLhV0v8mvHOV0nsK4bLUNPV1LGu5TRjsO7nsNyw+8tPduUFZgrm3dTkMvq6J1+qcebbaxuPNunMFeb4\/wDpOwAltPSSzN9uR7YmnvAs932gCkKP9I2Fx7cEkB7y2SP7Qs4e9oHeub+Emp3Gl7r2NEoKr\/Tqep4Zi+YmKZpjlAvlfbtDm07nDvHvsqLaXYaknOaWniL+EgbkkHe2Rlng94KpNv8Ab6mkw6abMGvjDXROB16292NB3jP6vEalY+p\/SEZYZYGXtxlP3BiZl02Rdq917fkKbU43F2N7ZU8mGRiojqZJaZr2Nkpal3WuyOcGkwSn6UObe+V5cDa2m9Xke09I+NsraiAMcLguka0+9riCD3ELxna\/pGiqJetlgje4ANAL3loA5N0HvVG\/buJvqUtG3v6nMfMuTFpcVJzlv3KcqT\/tf399T2bEdp6PX\/pUBtvs7N9wUGHYxTyte6KZjmxgl7yC1rQO8j47l+e9r9sHzgMIjYwfVjjawHle2+y62K2tdTw1UbM154y24cABcFpJBB4FZdRl0+BWk306P3mzBoJ5O9M\/REZY9geyRjmOF2uGYtI5ghtj4rFVm0VJmIdK64JH9U8i45G2q8ywHpQrIYWwsdmZH2WXYTZoHq3HAKpqtu5ySQ2NtyT2Y28fEFaFLT16m\/qIehyOXT6\/4PYsMx2mkk6qOQl\/fG9o3X3kKzlpwNzm\/H5LwSLbGrzXY5wd+yGg\/Bq7l2ir3b3zeZCo3h\/tv5DFoZp718\/8HstbURg5XSNB5a\/JJYi2MseesZYNPed3LivE6vFai9nyODuOZ5v96VmrpCDeW\/dmJuhzxrtL6GmGmyLuid2EG+guOZIF\/ddPbPwiKaOVzQQw3sHAHd3qiFPIeD\/ivvoEh+qfMfNI403axs08Mu819\/mepnbiJzrOYWjnmDvgFC7auAbs59wH3lef0OzU73AZHAEgZiDYX4k8lfN6N5eMjB7iVSUr6x+oKCX930L2XbmLgxx8S0fvSNRtyzgzzcP3BLN6NjxmHuZ83L4ej9v9o77IVW\/cvmyaXdv5EU22g9gfaPySVRtceAaPMqy\/oJH7b\/gvh2NiHF594+SpL4L6lk15ZURle+9G23lJTYRhrZXtdLTbQx1ktOO1K2mbFI0zhltchcHADUuAA1X5\/hcmGyDcSBfvQ42LTpn6\/wBpttMNlq6SKWuoJKU11XXsNK2sgMUr4JWQem1fpT8rZDM4SRMZFmc1tw1hcw\/aDpJom4nQTvq6MdTgVRSyy0xkbTMquugLYoetBkydl5jz6loB4r8s4xg0sHVGojdEJ4mzwl9h1kL\/AFJG66sdwKUa9umo13a71VYk0WWVpn6J6G+kGKPDsFZUVhbUR41LUVofK8ydQ6GrGec3JewvfH6xOpar6HbCjy0Q9Ii+j2pq65+vq0skta5k509RwlYQf2gvzPSuFxrqtBieGSwthdLG6NtRGJoHOFhLEbESM5tOYa94WDU5ZwnSWzPTaXR4ckE7+9\/v8j9Cz9I9KMjnzics2nfUsYC6V4pHNkjjljZYuLGZw5rGC+lmgkgKt\/SCpm\/qV5bVemtm2gnnZJ28sbZY6l4p2F5OYQ3yks7IdnbYZSB4Jh+JujkZNE4skje18bxa7XsILXC4IuCL6gq8216QKyu6sVtQ6cRXyNyxRtaSLF2WJjGlxGmZwJAuBYEro4sb2ZwNfw45uCMrR0ytIIlFCQmWyLamcmRK2NL1caZZMFDWSBPgxUkWWzzQtlSTgBYbCXWV8yRNM7dGoZXBNRV4WTjemoXFWQuU2ayPEVIcUHNZyJpSOKYm1ml8zuQO7x+Q+Cdji5OkhM8jSLXF9oHD1dVDQ7UuA7ZAHfr9yxuJ41IbhrbeGp+Bv8Vjq7G3X1JHjf8AeunDRxq5lccZT6Hsku3IB0aHjgc5B8cuU6eBVFtJtLLOLCpdGL\/1QZ2PAuALvtX9y8tfi\/u7\/wCSkpNojfK\/3OB+6+unsn4FNhi0+OSfc1LDmS2bL+owp57WdzCdz2PcYzbiRmLbf3SPglKfGuqc6OoZvuA9vaae\/hmHPjrrvUMOMPa4lhAdpnbfsSDQ6tvYm3HQ+9aSmnpqqJzHMyvsS4Zr2NvXZpe4+F9b71qcv\/HX6MpJOK9ate7qjO1hj0MTtbE9g5bW10HA925faKB0zcrXtk01Y\/suHdob7+KoPQTHIQDcNJ18D9\/cmJ4MwzMu2Rp+rcHw53XD1vspaj\/sxpRn3XZ\/5OvptfyfRP1R+qCo2bewn1ouWdt2H\/G3QDxUuHV00WtszQb5h2hw3EE2vZM0G3VRGMsgbKzd2hr4XHlqmZ9pKWSzjDJC\/iYXix8dxXAemzQdOPyf7M6nHgnvGVfFfuhgbbuyEG+u8WFtTa9iNdOGq6w7aljWFrdS8Wc4\/VJ3FthbQ+HwCrKmamdqJHf7yIHXxDfiSloGU4+uwf7p5+4qtZOji\/kwqnalH5o0Me1LWNs3ed5HrHx3nXXcTv8AclJKmed9gHMYTYnc4i9yGjeSd3uXOH1tKwj6Q\/4IbHwudfitBRbd0sQPVQySP9t9hf3kkjwAUxwZpv0Qfyr9R6liS\/7Jr4J2\/obbYDZnJk7IaGj335nmbceCtNqsbbJLI0uHU0tHJGNb5pZZInOfbiGGOMA8w5eUYz0mVEgLG5YWEWLWesRyLjr5WVTQVchY8C5zHO\/f6o4X793+S9L7I9kTxy5mZ7+F+5xfbOujlx8vF023\/g2u2NSXUQcLi2R9v2ToTryJWG2IxcssAefndbXCq5r6F17uAeGPB3hr7g2+8d4XmNZSGKQ23X0P557wme0NLLHJZI9OnwOVo8inGUJbOz1A7QSQ2khdo6QPkYRusLkg8LqGPEZcXroop5SxlndWBqG5RrYbi5wvqfBYOWuOUjgbLT9EtR1eIUbj\/ahun7YLR8SsWTI2x8MXCm+5X4\/gpirJKMHMWEgOOlwG5vNV1TT9lh9oOv4tNl610szCCvqpXktbmgkuGBzu0HNdY7xoPvXm2JYrniYwAZBLK5r7WeQ5xd2vtblV1W\/cIyk\/vv8AdCeETuc2WmLXSMfG4gNBcW5dc1h7Bs6\/cn6XYOJszYp6ggXcHOiYCRkaHm1yRfKS4DjlIVl0N4OJq\/qnSvha+GRryxwa5wcW9i++x3m3JWHSXgj6SsiaQRGbZXEglzo7AG\/MxtaD\/eKdghjzenLu1dfP9iMk5Qfo2vd\/Gjaxfo5Upa14q6h7XAOa5ohAc0i4IOQ6EL6P0fqIb5al3i5g+5gVz+jttR1tK+lebvpZHMZc6mEm7R\/hJLfABegVLl5zVKWDI4S7dPgOWVy7v5niu0\/QRS9S8U7pGz27D5JC5txwcLHsniQLqo2C6I\/RzM6qdDMXx5IwGuIYTe7u1x3cOC9uq3rP4lKeCwy1C7jHqo447tmO2OwQUtM2ncWyFpd28mW4c4kCxJOgNr3Ss+BU1yeoh5\/1bfkrqpjN7qOSBbNPqITME9apO0UlPQQNdmjhiY7dmaxoOu\/UBMFwJ3DyC7lp7Jdg1utHOTYuGpbe42YGbyxhPMtHySNZRRHQxxnxY0\/uUz5UnPKk5NTt1NOPUohfg8H9lH9gIMEbfVYxvg0D9y+OmSdTOs0s78mr8WqJZ5ks6RLySJd8yrzghqRmaRIyvXE06UklUc0a9QmSTSJGWZfZpEpIEPMinOdmNiev1D0LUTpdnaqOGAUsnVYhUPrqmiinoq2KIFhjNQ4kwSw3yNL25QYnOAlDZGt\/K72G6tqOvnETqds0zYHm74GzSCF55viDurcdBqWnctEo8SNkZKJ+6cKrpaqv2cdNBC+kqMIFQ6TqGZPS30rnOhadcrAx2cRbhvG5VHQtXRVeHtrxQxzSVlZPFiFLSUtNKBDDA6GnpnGpqIxTwtgZBKCCcz3bh1xv+RMFq6wmGGGatcWEinhhmqCWFwOYQRRuu0uF7iMai6ssPpKqGOUsFZBCXGCoLfSIYjI24ME5blYXi5Bhk7QudNVR4tiXm9x+qNjsIo24JD1NLLU0VRSV76p0cFNJIJGvsJJ6mSpY+KamAc1jY857BsbxtWF\/SVxiolwvAZXxxiGakglkkjia0NqjB\/UscNWMyOld1O7sA\/VXh9HXStjdCyWVsLzd8LZXtiedNXxBwY86DVwO4cl3UV8ro2wukldEwlzInSPMTHG93MjLsjXG5uWgE3PNJnD1DcWvWKnXQq3VJXyOqdyT8dNdNRUQXTxKkZNTqObLioShqXKU1LlZRUYTDKEJyoyNlG2pcoqqqctQzDwo58KCamivFXYj2eeTa61EYVThlHZXTGq1meW5JGE5StS0QVjRMVkxVFD0lYo6KAMjJbJOS3PxYwW6xwPtEENHiTwXlDpXhlxM8HdazN3jlutd0pYpnnyD1YmlunF2mb4uDf8ACVhqqp4cF1sGKMIW+vxZoxJtbL6EEs8guGvuLb9x\/wDLZdw4vnGWW5\/a0zt9\/wBb+6UjOdVCH2Pcd\/dyPuWbJnlCVp7dGnudBYoyXQfkBad92ncRezhzH7wdQvjm8PeFFSzfUduPqnv5\/uKYDeB3tPwUwamrX+n3X8FZbDcEpLAeWh\/PcfvTtDPZ4cNCd\/j3Ktws9pzeDhceP5spHSblsxTdKT+6M8470XuLTkPzGxEgFxb6w49xINrjkuKZwDg5vnx8DyKaxgAwseNdAfjb96rZxueOPl\/nxXRTcZfUxUnH6DeIUW94AI+sPHefBVE2CXu6P3t+XyWhoandvIt4jw8O5cV9OWODm+o4Xafvae8K2XTYsy9Sv9hcM04Ok\/8AJkiwjj5roe5ayRokHBsgG8jsu7naf+beO\/gkJQDlkaGuG8EDXvvuI7xvWX\/j1F1xGmOrvsUbGeCcgpidwJ8ASr2nkH1beWl\/zwTLKh28gafH8lbcWjUO4merb6IrcIwdzza7Wc8x1sNDZvG3uW6hw4NgLGZbkElwN3528RcA7uWncqrB6lrtHjidbm47xy8V3tXh7msZKzMWj1r72nv7itaSiYMmSWSST2Gtm2ZaaZj+Nnagizgbg+7VU+OR9YwOtqNHWFgd5UuG1ps9pJs4A87W59x11XEV7lu8H3\/5clWUU1TCKcZcXvsp8IoQ8uY5wZZpIe\/1NODnW0vuueKtKZ\/o88UrCJOqex+h0JaQbX5HddJYlTuBOS9njK5o4t5O5glS4Z0b188rYomCKQgHLNK1jg3gXR3MjRbcC0E8NF5n2lCWOfojtX37jrYJRmt5F70nbX+mz9dk6oZGsLb3zZdQT5lZho0sPd4nRJ49FLTSup5mgyRuLXaEA24tvvaeBX2tx+PtNADmuYANMuR3EjUkrnyzRi0mOWGTWwxsi+cYiyOO7XteGvFr2FxmBHEW5L079KSs+motLOY27je4O7dbcNNfcqLoDwSaoxJlVlsxjQXyFps7K0NNr8TbVbP9J\/EY5Iz1LmO6tzOsa1tnsBIAcTocl9Li+8J2j\/8Ap37v4eCmR7p7dl+fc876KMcMNVK9vttPiMzgQfEFfqCGpbJG2RmrXi4\/ePEHRfjvZ+WzpnD22ge+5\/cvfOhfaXMDTvOjrln94es33jX3JftvQc7BzY9Vfyv7Zjy3Gfy\/Q29WFV1ESuq1qqKorw3AzHkvuU9VEkHCysqoqsncrQuLsz9GLVQVXINU\/VyKtc9dLLKoD5OkRTJSVTzPSkjlkSCLIpErMmJHJSYptKjRFi8pSshUsxS0jlVtDYsikKWkU0jkvIVW0OiRPKgkcpHlLyKLGozjI1+hMCwugdsvAXU08lVLi3orZIepE76p7HGNrHuBcYDGQ0Qm\/wBLY2svzw2Vb\/YjpYrKSldRwindE6pZVsdND1skFRGYy2SB2cNabxt9ZrvrWtmK6E7o6akl1P0Hh\/RlSUlfgtVSNnhccUdRTwT1EFS9rxSzyhz3U75GRSgMs6IOsMw0FruvNjNi2YhS4rSyucyH+lWIySlhAkLI25ssdw67nOyiwBNsxtovBazp0rZHwP6qgiNPWuxBjYaZ0bHVL45I5HyATEydZ10kjiTmL3XzWAaoMD6aK+AvMRp2mTEZcTeeqeb1E7SyVn9aPoHMcW9X61j66RFuRPOx2ZXEpIjLIYGvbCXu6pshzSCO5ydYQAM+WxdYAA3CXBX3G8XdNNLO5sbHTSPle2JpbGHyOLnZGuc4tBcSctza+lhYJZhJV3vIxSdssopQp46gKokJCGSFb4AmXzKlMR1Sz8c6nZKmoqzRRVSZbOFQUkl065yvZWi6heupamyq4ZCo6ongrxavcVJF9SVSsKzERHE+Q\/VabDm7gPNZTD7g6qPbet7DWHd67h4bvjZacEOOaQtqkYTEqm7nkm50BPNxJc88PrX+CqKuW\/AfFSGXQ9+\/wS8hXSyztHQxQoiL7hcb18euhr4rmy9Tp\/7NdUfWi4txG5PUUuYWO8dk+HA+aQJ4qYPsQ8buP5+KjFLglfz+Hn4orNWv0+I3SvtIw95HwTFQeHelJvXHiD5qapfqVuhKlKPv\/YzSVtfA09O7NTMH7Lx9l\/8AJQ4c4EFh3EaabncD+e9d4aLRMb+xc+LyXW+IS8jLa8j967EP6Yt+FZzpdWvfsTUjy0kHQg2I\/PmtBTxh7DGeOre4jl5\/eqatZcCQb9Gu\/cSu8Gq7OsdwI\/PyWmDrYz5I8StCs0Ra6x0I05apl8jJBkl4eq8esw9197TxadPDeLvaCiztbI227Xx\/eszNGQrtKqfQrB8W\/cVraOSEjNq03yvaTld4HeD+ydfEapmjxBwsdOe7l+eKfwzELAskaHxOtnaeNuIItlcN4cNVDi2CZQZYXGWH61\/Xi7pWjh\/3g7J7rhLUXB7dB3GpbTW\/6\/5LrZuqikOV9o3usGuGgJ\/aG7u4LV01G5gLXXsBY6XaRbcbLyQH3Lb7H7SyCzHnO3dZ1t3j+66bxtmXUYGlcS7hwO+YxxOLT2S8W6tpOvrmzQe4kcFUTYXldZ8oFjqyMiaS37LY3GMl3APe2xWwdSNlhkjY1pmH0sF97hYdewEyNZ6rGSXcHWa2WwubrJYC\/wCka4kx3EjWv9lz2OY11wBo0uDri2641VVNyv3ff3sKg3Vlu3aBkfZjZ1DyLZrtlqwbW7VQW5Kc\/sQMDxqC4FL7DbRviqb30tI\/Lc2eWMc8Am+Yuc4avcS481QY\/g7mXLgRY9obu+4N9b778VBhwuc7XASx2e0ggg2sRcjfY6EeIS5Y4uLXk0YuFNSfQ9wxaspK5hbVtaHCMvbOGjOOBZe1yb6BYvDMCwSN7Wva8uIs1znOyNffQyHc0E7ydwJ4JCima9vVscWl46yEnQA3IdE48crw5oPEAHisrjFK8E5mEnW\/jzvz9y53\/H45b7+5eBsc00+Fv\/J7PiW31PRwGCnhMDm3bIzS7XHzGhsfZLSCCvEsL2hvO98wzxylzZWc2OuCGngQDce5XcVT11IS65koyxji71nU0jssZdxcYJfor+zNEPqrJ1sVjcbr\/kK+DTRxp8PXuX5jn6ZHdbQGCV0ROYF5kY724iAYnjxafcbjgr7ZTFDH1cjSQ4PLh\/hI+9I427rKVsgH0lMRG7vhkN2nn2JNP94lMNms1gGpA93En71dRVcDIfrjbP1RQ4g2aJkrdz238DxHuKra5Ybob2hsPR3nSQXYTu6waFv+IW05jvW9r2rwHtDSfh8zh26r4CZxtFJUqtnVrUKtqlijjtiOWVNU5JPTk6WmTc6XQmUROQJWUJ2RyWlKzUXjBCMqWlTsoS0oQaIwK+YJZ4T0rUvI1Q4jowEZAl3pyYJWQKEtxiiLPUL1PIl5CrcI2KMs1mqaao7KbKtcslGqVskp5Uw5\/FVRY5SPebJSydxLiONmVpRSBZdshurimiKrhyPidlZxotZHL45migjYeKnaU95pcWwncgpTqnZRouKeHW6fMei1LM+5aWQ+YOrctVdRssrJhVJagTPKNQsCkyhRGVR082qS88m6Ms8jHoYNVgNtq+7nG+hOg\/ZbcN8963WJT5Y3HieyPE6fddeV41Nd7zys0cV6L2bfLcvyNOm9ctyrjf2Sefz+SjeV1I\/s7tb6\/nguCtEpdEdhI5K5Oi+lAdzWeW4wl36+aKc6lp47vz8Fw02XczeI4aol\/wCu66\/Ar7ibN6ncbeSmjGZ1uZt7uPwSkj9Wnnr77WKdw02dflp5\/wAk3C+KfD71+n8CpqlZooHXzcju7uS+Nl7JB8\/3rildy5riV\/xXorpWctrcsMI1BB1BCWeLHT4fnThvUmEFTTgAacUyG8UJe0maLZqXMxzT++3IpLEqDf5fm3FV2CVORwN9Pnb4hazF4L6jc8A68x3W5W8k+MjJNcMtjEVTLeOviPmmtnJputYyna58rzlbG1ucvv8AVy2OYb7gi1r8FYyYaZC0NF3ucGgC+rnGwHiSQPkrXa2f0JrqKmcOtsWV9Uy4fLJftUsT7Zm0sVsjstjK8PLuzlCpkm06j1f3bNMKmqYvtZsiAC6KSnNQ0XnooZHSujPHq5Gs6lzmm+aFkjy3gT6oxFNU2OnD3LTUWHR08zPTDKIpIy+KeifHIQQ4tbIwOIbI3MwtdGXMcA4HSwB0u3mxcUlNTVUEzJJKh8jOuP0MU2jDHnY7+on\/AKxrrktLo5LnTMc\/OSaV3fu2+\/qOSpb9PP8AJe4ViZjhpQxsJnNK2oc57M72mWSYxkFxLR9B1TrEbnX4qq2gcx2WaEhrpHESQZwXMlO9sbMubquLXXN8wbvab47bevlgxCfsuZ1bmxRtkaQHQQsbBC4A72Pjja4EaEHQlWOFbYNDmyNaI5GE8M7HBws9jmnXI5rnNIvuJ1BsVOOmuJdfvb4GbJgcXfY0U8ZmhsBdzGkts0ElgtcW1dmZ6w\/Zza2aFiI5WsfY7723WJ4W591gFuMGrKd3XPjcyIhn0bKh87gwuaGytHo7HOezV+V7i11iARftJHEMbpQ5rrSPkaNXRxthY\/dYdZI59TktcEHIXA72q3MfRJlccErt\/LqSmjvFG0H6YSue1h9ZrHsHZfvc1zywuDDZ1mONrWVxiOztU5ge6KVrg0XJjeWOBtldctGpuAbfuWRw7amYNMcDhSt0OWm+izZd2eQXmkI1\/rJH7ylocQmDi4ySXI1cXOLtd9ze6qo5Pd9\/fvDIk2aykwCaJxlkhLG5MsrZA5kc0L9HsDnAC9tRrma4NcAS1U+IbJ5i4MeLXOVx0zN+rmG8HmRcA33jVV4x2UN7eY33HNofMaFJwue4ksLrcteev5sq1Lq2QlLyW+FbNzNLmPaHRTMdE5zXB1sw7Dt9+y8Ndu4LFYfNqQdCDa3eN4W7gmkjje8E6FhynlmDfgTe43WXnc1SDI9w3F73D3uJH3pMpUzRguV2arDaojI4GxBuDuIOhHvB1Xumy+NiogbJpnHYlaPqyN3+46OHcV+d6ae7D3G26\/C61Owe1Ho9RqfoZsrZQeB4PH907+4nkuZ7X0f4jFcf6luv3RDh1PXatVNe9X9bDxG5Z7E2rxWOW4p4pJlY8pScqxbGlpmJeTJbI5TK2QqB5TsrUpIEmxscdC8hSkz0zKUjMUyxvQikclpXqV4UEjEUMjYvKUtImZGpaUKRqQvIVA8KZ6jKOo2KMs1yYEmh8Cv0aP0N6\/8A+sovsz\/gXR\/Q6r9f+mUW4j1Z\/wAKZs3ub44JPqe07K\/o7YNJTU8j6Ql8kEL3n0mrF3Oja5xsJwBckmwFl+df0u+j2koKymioYupjkpese0ySyXf1r23vK95HZAFgQNF+69naIxQQxOIJihjjJG4ljGtJF9bEhfj79Pd3\/WNH\/wCC\/wDXlSMuRxjaNK00Z7Ufmunp7FaCiYElSx8U3CbLRDZWZXoslN0NysUdPFqvr5lxFUALQpxW4jBop5Z0kWbIwvjnBVzsQubIdU3Waee3SOn7V9mw0+FN9S0ieun1FklCV05vNZskpVaPKNDzKm6co96q4Waqwo96pjytPcpKOxHtrU2Yxv8AecfdYD7yfcvMKs6G\/Fx+5brb2otqfqtGnM3PzHkvOZ33+JJ8V7fTSUdPH3q\/mdHQw2sCdFwFwu7qvFZ0qoGldELhfQUWSdNcp4QOG7iFACumaG4Vlt1KtWc7tPZNx4Junfu73X+KXn4EcdPP+aKd1y0DfcBJxvl5K+X7fwElcTQ08hDlNiG8EKvMmum5WTTcL0UJcSaOXJU7JcPn3W\/N122Qk6KCA2UlI7tHh3rRB0qESXVlhFSi2Y8NR8\/3rS4TWZ48oOrfV3amx0vwPhZZt7hbXtfH3KbCZgHCwsCbd54D9yemZZxtF7gtX1dVTyusGsmie82v2WSNc7u3DcV92zwt5q6mPK50gnmGVgLnOOdxzWAJNx2r8tVW1DASQb6HXW4ufjber6tljqC2R0rYKtrGMLpndXDVCMBjH9de0NQ1jWtOfsPyg5mOJBrN8MuL3V\/H5eSYK1RBTbOvdBG2eil6kONqulfd8JeGBz54fpGaBjC9rmwus03IcSTat2ctFBTPuKdlXGwF+UPk6uoqY3TvbfsQzTzS5WtLskNNLd+eVhdl9o21Eb2tmdOyRgzRl73khp1zRPzEFpIvnjJadCCV6XsfiU00EEk2WV0l4jNI4HKDUtie91zo8NZFZ7AXl\/Un9tuHUqUUpJqr\/np9\/kasU30Mvie1DKp3V4i0tbUAS0rurYHU0D2gQSsNwW58gcYRZj2HXUsc3zvaTZ+SnmdDJa47TXt1ZLG71JIzxY4ag7xqDYtIEG0eJtkdFkz5IaeGnYXgB7mxNtmcGuc1pJJs1rnANDRc2utJhDxNSXqpOrjicYqR57T3TOyukiDb39HY3K97tzC6O1zIQm40o0vp\/H7\/ADLTi47roZ7CqosdfzB3cjcd6vH0wcLgtt8fA8VQ4rQuYbOG\/UOBzNcObXbiPzoVDTVhB\/N1q40tmZ5Y+L1RLQQtB3\/nzWgwetDhldbMPVI3ubyPePzuWckeHC48u9faaS1iCQQb\/wAwhipRtbmkEbsrstnCw7Jby4H5jVZyqkLXjK5zWu1bfhfgedjcXVjQ1oabgnfe3idRztpuUO0LWuylt8rrnXgTbd96VIMe0tzR0EMktLIxurwJYnj\/AO4z6Jw\/ZLm213E9y8op3WNje40I5EcCvUdgsUyPbc6EGN99fA\/cfd3rI9KGGtjrHBmjZWtmsDoC8kPt3Z2uPvXPz2pI16XZuH5iEEpAaffb7lbTsD2EsN22BLfrMPeOW8XWeEqmpanKQ5psR5G\/AjiDyV1MZKHc9h6Jtsi5rKWY3IBEMp42\/wBW79oDceI08dZiTNV4Rh7zfrGDK0kOvcAMeOLXHhfXzXsuBYuJo2uuOsDR1jQQbHdfTgbXuvLe2dGsS5sFs+vx8\/mVcr2JJElOnZwkqheY4WCQlMUrIFPM5LvciJeMRWdJvCfkS72p6iMWKxQhQTJiVJzOQ5UhygkhaUpSUpmUpaRKcmHAKyFQPcp5Uu9SpAon9P8A9bw\/2sX\/ABGfNH62h\/tYv+Iz5r+TQomjg37I+S+dQz2W\/ZHyTlfg6LzpH9Zji8P9rF\/xGfiX4w\/T1qmPxKjLHNeBRWu1wcAevk00JX5ikhb7LfIfJSU8gGgAHgLKmS+gyGpSdo0NPNZcioJOiQY0kaJrDaNw3p0eKVJrY9Dp8uNYrdWS1tSWhVIqnX3q8qcPuLXUFLgdtSVXLppuXp6F8Gr0+GN9ySiBDbneoZq6xV1DQaKN2BtJuU9aR8NI8z7V1b1U77ENPiIspmYknqbBW8k7BhDeSj8HLycV4GysiruV1Z0c+mgKsIqFg32Hio\/1vCHZWObI7W4YS61uBs0gE8iQoXs7f+ot+DlJGL6SajRoO8m9vAD5lYpp0Ws6QJs8ubKW3aLNO8ffqsx6Oef5969LHFJRil2SRr0yUIV7zkcF9KjAsuydFaLtD2F0WXLV0SPBC6En1hUjCoSF2wojLeiGj7IN4XeGN7RPkuHlcU9QRoP5pE5QhljKQU3FpF2GAcU5STN3LNiQlSwusbroY\/aKvaOxmnp7W7Na8C1wuIbDn4JLDq\/SxTjakaaXXZx5FNcSOdKDi6Y7FONR5ePK4XABHL\/L87lE2YLrN8Qd6cmJcSyp6i\/j+fzqo8TOmpHMW3fckIn6kbrqSWptv3cfmr8WxTgp7D+FbTSRt6rM2SHjBM0SxC\/FrTrGT7URa7vV9gOLZm9XEyshaSXWppBLFmcLOIiqG3FxuJmNiARqAUpsFsl1rutlFoxuadzuNz3dy9WoJI42nI0WHFc\/PnjHZK2Xc6exgI9haVkbnvbVTusLMkfFStbfefo+vc8jQWBb8l6Ho9qKosIyxQRNLIY2XyxtLi93aeS5z3vcXueblxPABrWpdI21D3v6tptrYBq9r6L8TyUsbXbw0C\/PxWLLqpwVrqNjKXd9TJ4f0UlrOrkJe08HE6G29tvVPeEhifQq23Yc8che\/wB4Xq2K7QgWXYxoZQs347P1KqMU9mfnPGOjWqiuYgZAOFhew+BWTkmexxD2ua4HVrhY+RX68psSaQdy8m6SsbpnSZA0F7TrYDT3rVp9fKTqS\/MtLp5PKmPDwSNHDe35L7HOcuUk6C+\/328LLWx08cotuPeLHzCosbwJ8etszdATbW3fbeuhHURl8TOutEGEyXH+L9yQ6QaguNOXakRvZfnlff8A\/pfKF9j3X\/PwS+3fqwu\/alHmIyPuKRq3WOzRgj\/2r8\/0KWF669ItroeY4fzUWHROe7IxpcTwA+\/uW4wXY0N7UpBd7I3D5rlZNbGCq9zrY9LLI+mxkZMXc2znXN\/VBHZI42G4LU9FnpUswkiHVU7HfSOOoI4xsv6xPdo3yCtK3A4JXxNlB6sPBNjY23WuNwOgNtbL0guZGxrI2hjGizWtFmgdwC42v9pZa4b2f3uOegjfCluSzqvqkniGLgc1WNxm50BXBlmhVFsPsmeVtJDlQClXPTMb7qKqarRxNqzNqfZ08O4q+RLyyr7I5JzuQ5NGNSaPk0qUkevsiieqK31LcbIpHKF7l3IUtI9TVDFI4kKgeV09yhe5SiyZRulFkm6ZfSF8FluWNs0PcglfdfaTem2gIJCvHArsr2LfDnK2jKysVVZNsxNaVjLRyzSo0YkClZMFm2VN+KnBPNQ1QxNyRoG1g5qVlcOazcbV8rqtsbczrm5sAOJ36ngFHFQcBrI8QC+zY21rb5mjS+vAeGl78LLzuvxZz9YzlI4X+Lb6NPhr3qlkmPEn+fzUSypFo4UbLFcWa5wzzl7b3c0MOoG5ttAPC5uiSvpXHs3jPtNs3\/ygke8WPesSSuXFU\/ENdh3CbLah+rBvDWgX56NO\/wB6pKiFztWgkd2p+autsJ2izOOVv3DTyAWahe7e24772HmvQTyJJR\/Tqc7BFuN\/qfW34rqaRMOrtLO+kPeAAPAjtHzC4BYd4Le\/N87qNkqT+Y631aFmlfS5SSyxjcHu8SAPgLn4KHr+QA9w+83KzvNCPpu\/hv8A4LpN9joFfe8LnrPzb5L60qU0+5LJS7RQMGq6eNF8g1Scz4pxTBKkNRsTbGJRhTUci6GBR7mbJYyBbxUrH80m6RSMkW+ORJ7GeUB9knBS+k9+iRaVM161xyCJQROagqfAad0srGAOcMwzZWk6d9hpfdr3p7AcAL2dfMXx04Ja3I3NNUPG+OmYdHFo9aV3YZxueytBsTK41LI\/R\/RoGkuEdnl7iQWB75ZLPkeBms4BrWkdlrdypkzOnQOKSbPTaVgDGsaLCwv8lSbcYl1cZA5LQ1bg25J99968n24xISEgHQLmRle5kULK\/YjDjNUZnC4BXudMcoDRoAF5P0S1YaXDjdelvnv3Jc3YZH6n7gxbUeC5ppOyNVBXSdkhJ0c1hZR2KM0cU+ll4r0kUxjqMw3OXqlG881570vv3c7ohtZbG\/WkUmFYhqFraHFQRldqPivM8Nm1V5T1JCbGdobkx7l3tBs3e8kVu8cD\/NZfFMK6zq2udZrS4v56gW8OOq1WF40Rodx3qk2qblkzt0DrfO6NTmbwST8dR+ijeaKfkuMFhjibljaBzPE+JTEtYqTCp+KYmlXk+N3Z7NQSVI+1c3FbPAcQzwi+9vZPu3HyWAmemsMrXAODTy+CZKd426utyYQXMjffY1lcQkiWhZmrrJOarKmd\/Fx81zF7Qh\/5O0tLw9zZPxIN4hDq3NuWFooC5414rY0sdgrfipZNkqPO+3JKEeFPc+TPSssimmKVlCo4s8mrI5JEu+VdPaonsQky6TZFI9QvKkeFBIVevJdKjl6heV9kelnvUl7Mf6SV965ykauyQuokb214IWyOXRa7mu2PCmjkCukVb9wkQe9SQsN02+K6jZoVZRDjstKFismhVVPIrSB6W3uX7HbCpqima9pY7cePEHgR3hREruORFBZkK6hdG4tPDjwcOY+SI3M+uHA9381spGtcLOaHDvF1n8WoA1xsNN4BN9D3nWw3aKnBXQdGViop4D9d7T3i4\/n7tVDHhZJFnNc0uANjZ1ifZKge4cQR4G\/32+9N4KWB+cnSMF9rG5I0A+0QoilKSTSJnsmywxSmLpHvfqS7st4AXsMx52+qPfyVZWSjde+g0G4dw4BQ1+KOkdqbNuNB5a800KcBbs3tBK+WvzYjT6aUq4vkKAE7gGj4rqOnHHVMKeGJcjJmnkfqZ1IYIxPtHSX4aKzjwiLiP3fcoad1k3HIphKhjgn2IX7Px8C4e+\/3pOfZ4\/VdfxVs6VctmTOdJdxfJi+xl6qnc3Rwt9xUEC0GOvvG7uCzsRT8OZzkrMmfEoOkONKmY5KBy7Dl1o5qMUojbfJTMskRKefmpIwTuB+4ea048y7IVKI46YBaDZTDQ8sknPV05flBuGvncD2mQ5iAAPrzOsyMXuSbNXeCbIMLYHTzNjdUEdTTNB62ZhcWtcZHWjgbI4FrXPvfeNNUjtHiPWylzmBoYBHHCPUhjZo2Jg3C3E21cXE6laoyyS6OhEuFHo+0W3kLGy9U1j5MkcdK2B0g6qNjr2fLGWlkTm2+gZlvqS55eXjJYDtTO+pZLUOBys6tos1oa3eAGsAA1\/cNwAGYbNpYaBRvd\/mrLEl3FvdVR6RtztBI9h6sEi2pCw2EU0j77\/evV+jdrJaXUAnUa+SXloQwkAAeC5+Rerr0KRnwqqKjYDBHNcXOPyXoEcnBUlFLYI\/WGtlJln6pNltXSWCVp5brsSgixSTJCDorJ7CqLWSay8t6Tqouka0alb6VxcbLNbTYIQesHaIVW6Q7BD12YmHDpGi+XRdOxG2hBC22CzHqnl4GnCyhhoYXt7bXC+5wsbHnbS4\/Z36aEa3IKUuhom4p+oyUOKC6tsXqrwAHxaTvFyAB4aHzKdrtlmsAkaQ9l7ZhuB4A37TSbbnNHdfek9vKHLEC31Q4t+yWnX\/DIPJTOMuXK\/D\/AEL4ZQ5ka8oqsOrbKzkmuszhj9VdlwsvKyPYY5WjqSVTYbNZw8vNI3XLZLFMwyp7kZOhNiNYQ4tPAqtmq7q0xWIODXjf6rv3XVbDD2gO9cfUYOVkcfl8Dt4dRzMSn8\/ijRbO0+gKuZnJOiNgETzJ2GlE+d+0tS8mZ2Dnrh7lFI9RPkT0YoSOnuUMj1w9yXkepbNEZHcjkpKVKHKOSy0LTyaL9SDJddSMAC+R1AVbidbfQLTiwKI2MUkZdfbJfrijriqLLE6HCxkBdBK9ee5fevPcrc6JDgy2pZVxUFVrKojl+fevrqs93x+astRGhfKdl9SBWMBWWjxRw4N8j81KMafyb5H5pfNiX4Gau6GrLfr1\/JvkfxIGOv5N8j+JTzYkqDNjGocZiu3MN4FvcssNoZOTPI\/iXY2kk3WZ5O\/EhZogotHyqjUETbG+8cRzB3j380vNXE77eX81wao93x+aW8iu0P2Pksdt2o5\/ncVo3NuGnmAfMLNGUpxmLuDQ2zbAWvY3+9UbjTL4pKL3LOKNS3VMMVdyb5H5o\/WjuTfI\/NKo0c+BfRnkpmyLONxZ3Jvkfmvv64dyb5H5qQ58TTXX0FZoY2\/k3yP4l9ONv5N8j+JDBZ4lpi7+wVSRN7wipxJzhYhvuv8ANKiROw5FB7ozZ5cb2LAR94XeRvMnw0Vd1xR15W1azGv7f1MrxvybLY4MtVuLWkx0UzmZgHWe50ceYX3Oa17rHmquhJe9kd7Z3sYO7M4N\/eq3DMYfH1gaGnrYnROuCey5zXaWI1BYN9x3FfMNxZ0crJWhpdHI2QAg5bscHAEAg5bjcCNE+PtGK935C3gNRtvieermc3stY8xQgfUjh+jiDeVmsB8SVxtLWskmdLE1zGyBr3tdwlc0GbLb6hlzEdx4bhl5sScXFxDbuJcd+8m5O\/idU9h+0RYDaKBzuD5GOkLfBj3mEnvcwp8faWJdW\/kUeCXYucLw58hIjY59tTlGjRzc71WDvcQE9TYLmOTrGZv7OIOqZDbl1QMQHe6RoCzNXtTM+wkIcwG\/V6si\/wCHGWtB72gHvXdTtbMQGDLHEDfqowWRm3tgG8h03yFx70\/\/AJbDVb\/IX+FnZ+gNjsCFNT3zOJOpzFhsTwAZ2R9p3iqjEMRBO9eXz9KFS5gYRDlGmjX\/AMRJR7dTA3yQnxbJ\/EWN6\/G3e\/yFfg8h6zDUutuTLXHkvKx0nVG7q6f7En8VfT0oVHsQfZk\/ioXtDF7xT0OV9l8z1aGQ31TLWElePDpNqPYg+zJ\/FUzOlapH1Kf7En8VS\/aGL3\/Ir\/x+X3fM9GxetMdyTuVE3avObHmsDjW3M0os9sQ\/uh4+95SGG7SPj3Njdf2g4\/c8IftDF9odDQzS3Pc8Lkic0tJtdUmONEJDdbE6a7l5qdt5b3DIQe4SfxFHiO2Uslswj05B373q+D2lihK23XwCehnJHomF17g4W7bJBke0+q4HcHW1BDrG43bxqotqahpgdHGHgDO95kILi7IGtGjRYNAPmV53SbVyt9UM8nfjTFXtvM4EFsXaBBIa65vvPr2v7k+ftTTy8\/IpHRZYtUl8ybDpFcQu0WKhxVw3Bvkfmpv1+\/k3yP4l5uTR6GGWjVT1GtguA9ZZuOP5M8j+JdMx94N7MPiHfiRFruS8xt6JjiCLHXmosOju\/wAFnY9tJQLZYrf3XfjUce18oJdliuf2XfjU6xQypcPVfoGDVThGUfP6no9tElK9Yx23M3sxfZf\/ABFA\/a+U\/Vj8nfjWflpHncmhyyk3sblr18cVhhtbL7Mfk78aP6XS+zH5O\/GmqgjoMi8G1coZFkDtbL7Mfk78a4O1Unsx+TvxKGkOWkmXFdV2O9RzVtxoeCzlZijn7w0eAP7yVD6a61lujqI0kx0dM0i2NUlpqpIGqPd8fmuXTnuQ9REasJEhCFhNIIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEACEIQAIQhAAhCEAf\/\/Z\" width=\"306px\" alt=\"symbolic machine learning\"\/><\/p>\n<p><p>Employing statistical learning, this investigation presents the first attribute-integrating quantitative model of factors that contribute to creativity judgments in visual art among novice raters. Our research represents a significant stride forward building the groundwork for first causal models for future  investigations in art and creativity research and offering implications for diverse practical applications. Beyond enhancing comprehension of the intricate interplay and specificity of attributes used in evaluating creativity, this work introduces machine learning as an innovative approach in the field of subjective judgment. The Symbolic AI paradigm led to seminal ideas in search, symbolic programming languages, agents, multi-agent systems, the semantic web, and the strengths and limitations of formal knowledge and reasoning systems. The interpretation grammars that define each episode were randomly generated from a simple meta-grammar. An example episode with input\/output examples and corresponding interpretation grammar (see the \u2018Interpretation grammars\u2019 section) is shown in Extended Data Fig.<\/p>\n<\/p>\n<p><h2>Synthesis of Code Generators from Examples<\/h2>\n<\/p>\n<p><p>2, this model predicts a mixture <a href=\"https:\/\/www.metadialog.com\/blog\/symbolic-ai\/\">of algebraic<\/a> outputs, one-to-one translations and noisy rule applications to account for human behaviour. A standard transformer encoder (bottom) processes the query input along with a set of study examples (input\/output pairs; examples are delimited by a vertical line (\u2223) token). The standard decoder (top) receives the encoder\u2019s messages and produces an output sequence in response. After optimization on episodes generated from various grammars, the transformer performs novel tasks using frozen weights.<\/p>\n<\/p>\n<p><p>The technology actually dates back to the 1950s, says expert.ai\u2019s Luca Scagliarini, but was considered old-fashioned by the 1990s when demand for procedural knowledge of sensory and motor processes was all the rage. Now that AI is tasked with higher-order systems and data management, the capability to engage in logical thinking and knowledge representation is cool again. But symbolic AI starts to break when you must deal with the messiness of the world. For instance, consider computer vision, the science of enabling computers to make sense of the content of images and video. Say you have a picture of your cat and want to create a program that can detect images that contain your cat.<\/p>\n<\/p>\n<p><h2>LLMs can\u2019t self-correct in reasoning tasks, DeepMind study finds<\/h2>\n<\/p>\n<p><p>At this point, I should probably go look at all the general conceptual models of the machine learning space and see how close I am to reaching comprehensive coverage. I jumped over into Google Trends and took a look at what topics are bubbling to the surface [0]. Valence likely emerges from the presented content in conjunction with attributes such as symbolism, abstraction, and imaginativeness (40, see Fig.&nbsp;3b for potential associations). However, emotionality and valence (see Fig. S3 in Supplementary Information) showed very low correlations with the other attributes in general.<\/p>\n<\/p>\n<p><p>For visual processing, each \u201cobject\/symbol\u201d can explicitly package common properties of visual objects like its position,  pose, scale, probability of being an object, pointers to parts, etc., providing a full spectrum of interpretable visual knowledge throughout all layers. It achieves a form of \u201csymbolic disentanglement\u201d, offering one solution to the important problem of disentangled representations and invariance. Basic computations of the network include predicting high-level objects and their properties from low-level objects and binding\/aggregating relevant objects together.<\/p>\n<\/p>\n<p><p>We have described a process for synthesising code generator transformations from datasets of text examples. The approach uses symbolic machine learning to produce explicit specifications of the code generators. Thus, a developer of a template-based code generator needs to understand the source language metamodel, the target language syntax, and the template language. These three languages are intermixed in the template texts, with delimiters used to separate the syntax of different languages. The concept is similar to the use of JSP to produce dynamic Web pages from business data. Figure 1 shows an example of an EGL script combining fixed template text and dynamic content, and the resulting generated code.<\/p>\n<\/p>\n<div style='border: grey dashed 1px;padding: 13px;'>\n<h3>The 6 Most Important Programming Languages for AI Development &#8211; MUO &#8211; MakeUseOf<\/h3>\n<p>The 6 Most Important Programming Languages for AI Development.<\/p>\n<p>Posted: Tue, 24 Oct 2023 12:00:00 GMT [<a href='https:\/\/news.google.com\/rss\/articles\/CBMiN2h0dHBzOi8vd3d3Lm1ha2V1c2VvZi5jb20vdG9wLWFpLXByb2dyYW1taW5nLWxhbmd1YWdlcy_SAQA?oc=5' rel=\"nofollow\">source<\/a>]<\/p>\n<\/div>\n<p><p>Due to the difference of prediction mechanisms of white-box models (i.e., mechanical-properties-based models) and black-box models (i.e., data-driven-based models), so far, they are considered as the independent approaches for resistance prediction [31]. In previous studies, white-box models are welcomed due to the explicit prediction mechanisms, whereas black-box models due to the superior prediction performances. As an intermediate model with these advantages, grey-box models bridge the gap between white and black-models elegantly, and gain the popularity in the latest studies [32,33]. Herein, a machine-learning-based symbolic regression technique, namely genetic programming (GP), is adopted to develop a grey-box prediction model for punching shear resistance of FRP-reinforced concrete slabs.<\/p>\n<\/p>\n<p><p>This test episode probes the understanding of \u2018Paula\u2019 (proper noun), which just occurs in one of COGS\u2019s original training patterns. Each step is annotated with the next re-write rules to be applied, and how many times (e.g., 3\u2009\u00d7\u2009, since some steps have multiple parallel applications). For each SCAN split, both MLC and basic seq2seq models were optimized for 200 epochs without any early stopping. For COGS, both models were optimized for 300 epochs (also without early stopping), which is slightly more training than the extended amount prescribed in ref. 67 for their strong seq2seq baseline. This more scalable MLC variant, the original MLC architecture (see the \u2018Architecture and optimizer\u2019 section) and basic seq2seq all have approximately the same number of learnable parameters (except for the fact that basic seq2seq has a smaller input vocabulary).<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"304px\" alt=\"symbolic machine learning\"\/><\/p>\n<p><p>Recently new symbolic regression tools have been developed, such as TuringBot [3], a desktop software for symbolic regression based on simulated annealing. The promise of deriving physical laws from data with symbolic regression has also been revived with a project called Feynman AI, lead by famous physicist Max Tegmark [4]. In addition to symbolism, emotionality, and imaginativeness, also the attributes complexity, abstractness, and valence predicted creativity judgments to a lesser extent, all showing a positive association with judged creativity (see Fig. S1a\u2013c in Supplementary Information). It is one form of assumption, and a strong one, while deep neural architectures contain other assumptions, usually about how they should learn, rather than what conclusion they should reach.<\/p>\n<\/p>\n<p><h2>A Guide to Symbolic Regression Machine Learning<\/h2>\n<\/p>\n<p><p>Read more about <a href=\"https:\/\/www.metadialog.com\/\">https:\/\/www.metadialog.com\/<\/a> here.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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width=\"308px\" alt=\"symbolic machine learning\"\/><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Code Generation by Example Using Symbolic Machine Learning SN Computer Science We show that the resulting system \u2013 though just a prototype \u2013 learns effectively, and, by acquiring a set of symbolic rules that are easily comprehensible to humans, dramatically outperforms a conventional, fully neural DRL system on a stochastic variant of the game. Creativity [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":[],"categories":[49],"tags":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v20.10 - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Symbolic artificial intelligence Wikipedia - Sewa Scaffolding Palu<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/sewascaffoldingpalu.com\/?p=5667\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Symbolic artificial intelligence Wikipedia - Sewa Scaffolding Palu\" \/>\n<meta property=\"og:description\" content=\"Code Generation by Example Using Symbolic Machine Learning SN Computer Science We show that the resulting system \u2013 though just a prototype \u2013 learns effectively, and, by acquiring a set of symbolic rules that are easily comprehensible to humans, dramatically outperforms a conventional, fully neural DRL system on a stochastic variant of the game. 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