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script.js
ADDED
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| 1 |
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var log = console.log;
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| 2 |
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var ctx = null;
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| 3 |
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var canvas = null;
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| 4 |
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var RNN_SIZE = 400;
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| 5 |
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var VOCAB_SIZE = 165;
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| 6 |
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var NUM_ATT_HEADS=10;
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| 7 |
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var NUM_GMM_HEADS=20;
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| 8 |
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var cur_run = 0;
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| 9 |
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var scale_factor = 1.;
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| 10 |
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| 11 |
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var randn = function() {
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| 12 |
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// Standard Normal random variable using Box-Muller transform.
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| 13 |
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var u = Math.random() * 0.999 + 1e-5;
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| 14 |
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var v = Math.random() * 0.999 + 1e-5;
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| 15 |
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return Math.sqrt(-2.0 * Math.log(u)) * Math.cos(2.0 * Math.PI * v);
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| 16 |
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}
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| 17 |
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| 18 |
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var rand_truncated_normal = function(low, high) {
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| 19 |
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while (true) {
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| 20 |
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r = randn();
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| 21 |
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if (r >= low && r <= high)
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break;
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| 23 |
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// rejection sampling.
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| 24 |
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}
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return r;
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}
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| 27 |
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| 28 |
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| 29 |
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| 30 |
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var char2idx = {'\x00': 0, ' ': 1, '!': 2, '"': 3, '#': 4, '%': 5, '&': 6, "'": 7, '(': 8, ')': 9, '*': 10, ',': 11, '-': 12, '.': 13, '/': 14, '0': 15, '1': 16, '2': 17, '3': 18, '4': 19, '5': 20, '6': 21, '7': 22, '8': 23, '9': 24, ':': 25, ';': 26, '?': 27, 'A': 28, 'B': 29, 'C': 30, 'D': 31, 'E': 32, 'F': 33, 'G': 34, 'H': 35, 'I': 36, 'J': 37, 'K': 38, 'L': 39, 'M': 40, 'N': 41, 'O': 42, 'P': 43, 'Q': 44, 'R': 45, 'S': 46, 'T': 47, 'U': 48, 'V': 49, 'W': 50, 'X': 51, 'Y': 52, 'a': 53, 'b': 54, 'c': 55, 'd': 56, 'e': 57, 'f': 58, 'g': 59, 'h': 60, 'i': 61, 'j': 62, 'k': 63, 'l': 64, 'm': 65, 'n': 66, 'o': 67, 'p': 68, 'q': 69, 'r': 70, 's': 71, 't': 72, 'u': 73, 'v': 74, 'w': 75, 'x': 76, 'y': 77, 'z': 78, 'À': 79, 'Á': 80, 'Â': 81, 'Ô': 82, 'Ú': 83, 'Ý': 84, 'à': 85, 'á': 86, 'â': 87, 'ã': 88, 'è': 89, 'é': 90, 'ê': 91, 'ì': 92, 'í': 93, 'ò': 94, 'ó': 95, 'ô': 96, 'õ': 97, 'ù': 98, 'ú': 99, 'ý': 100, 'Ă': 101, 'ă': 102, 'Đ': 103, 'đ': 104, 'ĩ': 105, 'ũ': 106, 'Ơ': 107, 'ơ': 108, 'Ư': 109, 'ư': 110, 'ạ': 111, 'Ả': 112, 'ả': 113, 'Ấ': 114, 'ấ': 115, 'Ầ': 116, 'ầ': 117, 'ẩ': 118, 'ẫ': 119, 'ậ': 120, 'ắ': 121, 'ằ': 122, 'ẳ': 123, 'ẵ': 124, 'ặ': 125, 'ẹ': 126, 'ẻ': 127, 'ẽ': 128, 'ế': 129, 'Ề': 130, 'ề': 131, 'Ể': 132, 'ể': 133, 'ễ': 134, 'Ệ': 135, 'ệ': 136, 'ỉ': 137, 'ị': 138, 'ọ': 139, 'ỏ': 140, 'Ố': 141, 'ố': 142, 'Ồ': 143, 'ồ': 144, 'ổ': 145, 'ỗ': 146, 'ộ': 147, 'ớ': 148, 'ờ': 149, 'Ở': 150, 'ở': 151, 'ỡ': 152, 'ợ': 153, 'ụ': 154, 'Ủ': 155, 'ủ': 156, 'ứ': 157, 'ừ': 158, 'ử': 159, 'ữ': 160, 'ự': 161, 'ỳ': 162, 'ỷ': 163, 'ỹ': 164};
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| 31 |
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| 32 |
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var gru_core = function(input, weights, state, hidden_size) {
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| 33 |
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var [w_h,w_i,b] = weights;
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| 34 |
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var [w_h_z,w_h_a] = tf.split(w_h, [2 * hidden_size, hidden_size], 1);
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| 35 |
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var [b_z,b_a] = tf.split(b, [2 * hidden_size, hidden_size], 0);
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| 36 |
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gates_x = tf.matMul(input, w_i);
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| 37 |
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[zr_x,a_x] = tf.split(gates_x, [2 * hidden_size, hidden_size], 1);
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| 38 |
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zr_h = tf.matMul(state, w_h_z);
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| 39 |
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zr = tf.add(tf.add(zr_x, zr_h), b_z);
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| 40 |
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// fix this
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| 41 |
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[z,r] = tf.split(tf.sigmoid(zr), 2, 1);
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| 42 |
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a_h = tf.matMul(tf.mul(r, state), w_h_a);
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| 43 |
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a = tf.tanh(tf.add(tf.add(a_x, a_h), b_a));
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| 44 |
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next_state = tf.add(tf.mul(tf.sub(1., z), state), tf.mul(z, a));
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| 45 |
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return [next_state, next_state];
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| 46 |
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};
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| 47 |
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| 48 |
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| 49 |
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var generate = function() {
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| 50 |
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cur_run = cur_run + 1;
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| 51 |
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setTimeout(function() {
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| 52 |
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var counter = 2000;
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| 53 |
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tf.disposeVariables();
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| 54 |
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| 55 |
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tf.engine().startScope();
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| 56 |
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ctx.clearRect(0, 0, canvas.width, canvas.height);
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| 57 |
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ctx.beginPath();
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| 58 |
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dojob(cur_run);
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| 59 |
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}, 200);
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| 60 |
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| 61 |
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return false;
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| 62 |
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}
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| 63 |
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| 64 |
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var dojob = function(run_id) {
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| 65 |
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var text = document.getElementById("user-input").value;
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| 66 |
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if (text.length == 0) {
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| 67 |
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text = "Tất cả mọi người đều sinh ra có quyền bình đẳng.";
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| 68 |
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}
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| 69 |
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| 70 |
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| 71 |
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log(text);
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| 72 |
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original_text = text;
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| 73 |
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text = '' + text + ' ';
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| 74 |
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| 75 |
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text = Array.from(text).map(function(e) {
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| 76 |
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return char2idx[e]
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| 77 |
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})
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| 78 |
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var text_embed = WEIGHTS['rnn/~/embed_1__embeddings'];
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| 79 |
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indices = tf.tensor1d(text, 'int32');
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| 80 |
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text = text_embed.gather(indices);
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| 81 |
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| 82 |
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var embed = text;
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| 83 |
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| 84 |
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var writer_embed = WEIGHTS['rnn/~/embed__embeddings'];
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| 85 |
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var e = document.getElementById("writers");
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| 86 |
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var wid = parseInt(e.value);
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| 87 |
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log(wid);
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| 88 |
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| 89 |
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wid = tf.tensor1d([wid], 'int32');
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| 90 |
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wid = writer_embed.gather(wid);
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| 91 |
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embed = tf.add(wid, embed);
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| 92 |
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| 93 |
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| 94 |
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| 95 |
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filter = WEIGHTS['rnn/~/conv1_d__w'];
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| 96 |
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embed = tf.conv1d(embed, filter, 1, 'same');
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| 97 |
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bias = tf.expandDims(WEIGHTS['rnn/~/conv1_d__b'], 0);
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| 98 |
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embed = tf.add(embed, bias);
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| 99 |
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| 100 |
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| 101 |
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// initial state
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| 102 |
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var gru0_hx = tf.zeros([1, RNN_SIZE]);
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| 103 |
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var gru1_hx = tf.zeros([1, RNN_SIZE]);
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| 104 |
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var gru2_hx = tf.zeros([1, RNN_SIZE]);
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| 105 |
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| 106 |
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var att_location = tf.zeros([1, NUM_ATT_HEADS]);
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| 107 |
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var att_context = tf.zeros([1, VOCAB_SIZE]);
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| 108 |
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| 109 |
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var input = tf.tensor([[0., 0., 1.]]);
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| 110 |
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| 111 |
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gru0_w_h = WEIGHTS['rnn/~/attention_core/~/gru__w_h'];
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| 112 |
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gru0_w_i = WEIGHTS['rnn/~/attention_core/~/gru__w_i'];
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| 113 |
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gru0_bias = WEIGHTS['rnn/~/attention_core/~/gru__b'];
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| 114 |
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| 115 |
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gru1_w_h = WEIGHTS['rnn/~/attention_core/~/gru_1__w_h'];
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| 116 |
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gru1_w_i = WEIGHTS['rnn/~/attention_core/~/gru_1__w_i'];
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| 117 |
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gru1_bias = WEIGHTS['rnn/~/attention_core/~/gru_1__b'];
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| 118 |
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| 119 |
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gru2_w_h = WEIGHTS['rnn/~/attention_core/~/gru_2__w_h'];
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| 120 |
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gru2_w_i = WEIGHTS['rnn/~/attention_core/~/gru_2__w_i'];
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| 121 |
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gru2_bias = WEIGHTS['rnn/~/attention_core/~/gru_2__b'];
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| 122 |
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| 123 |
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att_w = WEIGHTS['rnn/~/attention_core/~/linear__w'];
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| 124 |
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att_b = WEIGHTS['rnn/~/attention_core/~/linear__b'];
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| 125 |
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gmm_w = WEIGHTS['rnn/~/linear__w'];
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| 126 |
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gmm_b = WEIGHTS['rnn/~/linear__b'];
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| 127 |
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| 128 |
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var ruler = tf.tensor([...Array(text.shape[0]).keys()]);
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| 129 |
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ruler = tf.expandDims(ruler, 1);
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| 130 |
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var bias = parseInt(document.getElementById("bias").value) / 100 * 3;
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| 131 |
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| 132 |
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| 133 |
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var cur_x = 20;
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| 134 |
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var cur_y = innerHeight / 2 + 30;
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| 135 |
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var path = [];
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| 136 |
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var dx = 0.;
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| 137 |
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var dy = 0;
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| 138 |
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var eos = 1.;
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| 139 |
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var counter = 0;
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| 140 |
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| 141 |
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| 142 |
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function loop(my_run_id) {
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| 143 |
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if (my_run_id < cur_run) {
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| 144 |
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tf.disposeVariables();
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| 145 |
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tf.engine().endScope();
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| 146 |
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return;
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| 147 |
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}
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| 148 |
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| 149 |
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counter++;
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| 150 |
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if (counter < 2000) {
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| 151 |
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[att_location,att_context,gru0_hx,gru1_hx, gru2_hx, input] = tf.tidy(function() {
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| 152 |
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// Attention
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| 153 |
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const inp_0 = tf.concat([att_context, input], 1);
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| 154 |
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gru0_hx_ = gru0_hx;
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| 155 |
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[out_0,gru0_hx] = gru_core(inp_0, [gru0_w_h, gru0_w_i, gru0_bias], gru0_hx, RNN_SIZE);
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| 156 |
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tf.dispose(gru0_hx_);
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| 157 |
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const att_inp = tf.concat([att_context, input, out_0], 1);
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| 158 |
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const att_params = tf.add(tf.matMul(att_inp, att_w), att_b);
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| 159 |
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[alpha,beta,kappa] = tf.split(tf.softplus(att_params), 3, 1);
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| 160 |
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att_location_ = att_location;
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| 161 |
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att_location = tf.add(att_location, tf.div(kappa, 25.));
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| 162 |
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tf.dispose(att_location_)
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| 163 |
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| 164 |
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var phi = tf.sum(tf.mul(alpha, tf.exp(tf.div(tf.neg(tf.square(tf.sub(att_location, ruler))), beta))), 1);
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| 165 |
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phi = tf.expandDims(phi, 0);
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| 166 |
+
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| 167 |
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att_context_ = att_context;
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| 168 |
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att_context = tf.sum(tf.mul(tf.expandDims(phi, 2), tf.expandDims(embed, 0)), 1)
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| 169 |
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tf.dispose(att_context_);
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| 170 |
+
|
| 171 |
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const inp_1 = tf.concat([input, out_0, att_context], 1);
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| 172 |
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// tf.dispose(input);
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| 173 |
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gru1_hx_ = gru1_hx;
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| 174 |
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[out_1,gru1_hx] = gru_core(inp_1, [gru1_w_h, gru1_w_i, gru1_bias], gru1_hx, RNN_SIZE);
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| 175 |
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tf.dispose(gru1_hx_);
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| 176 |
+
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| 177 |
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const inp_2 = tf.concat([input, out_1, att_context], 1);
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| 178 |
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tf.dispose(input);
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| 179 |
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gru2_hx_ = gru2_hx;
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| 180 |
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[out_2, gru2_hx] = gru_core(inp_2, [gru2_w_h, gru2_w_i, gru2_bias], gru2_hx, RNN_SIZE);
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| 181 |
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tf.dispose(gru2_hx_);
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| 182 |
+
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| 183 |
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// debugger;
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| 184 |
+
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| 185 |
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// GMM
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| 186 |
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const gmm_params = tf.add(tf.matMul(out_2, gmm_w), gmm_b);
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| 187 |
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[x,y,logstdx,logstdy,angle,log_weight,eos_logit] = tf.split(gmm_params, [NUM_GMM_HEADS, NUM_GMM_HEADS, NUM_GMM_HEADS, NUM_GMM_HEADS, NUM_GMM_HEADS, NUM_GMM_HEADS, 1], 1);
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| 188 |
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// log_weight = tf.softmax(log_weight, 1);
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| 189 |
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// log_weight = tf.log(log_weight);
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| 190 |
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// log_weight = tf.mul(log_weight, 1. + bias);
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| 191 |
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const idx = tf.argMax(log_weight, 1).dataSync()[0];
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| 192 |
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// const idx = tf.multinomial(log_weight, 1).dataSync()[0];
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| 193 |
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x = x.dataSync()[idx];
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| 194 |
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y = y.dataSync()[idx];
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| 195 |
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const stdx = tf.exp(tf.sub(logstdx, bias)).dataSync()[idx];
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| 196 |
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const stdy = tf.exp(tf.sub(logstdy, bias)).dataSync()[idx];
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| 197 |
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angle = angle.dataSync()[idx];
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| 198 |
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e = tf.sigmoid(tf.mul(eos_logit, (1. + bias/5))).dataSync()[0];
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| 199 |
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const rx = rand_truncated_normal(-5, 5) * stdx;
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| 200 |
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const ry = rand_truncated_normal(-5, 5) * stdy;
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| 201 |
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x = x + Math.cos(-angle) * rx - Math.sin(-angle) * ry;
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| 202 |
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y = y + Math.sin(-angle) * rx + Math.cos(-angle) * ry;
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| 203 |
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if (Math.random() < e) {
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| 204 |
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e = 1.;
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| 205 |
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} else {
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| 206 |
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e = 0.;
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| 207 |
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}
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| 208 |
+
input = tf.tensor([[x, y, e]]);
|
| 209 |
+
return [att_location, att_context, gru0_hx, gru1_hx, gru2_hx, input];
|
| 210 |
+
});
|
| 211 |
+
|
| 212 |
+
[dx,dy,eos_] = input.dataSync();
|
| 213 |
+
dy = -dy * 3. * scale_factor;
|
| 214 |
+
dx = dx * 3. * scale_factor;
|
| 215 |
+
if (eos == 0.) {
|
| 216 |
+
ctx.beginPath();
|
| 217 |
+
ctx.moveTo(cur_x, cur_y, 0, 0);
|
| 218 |
+
ctx.lineTo(cur_x + dx, cur_y + dy);
|
| 219 |
+
ctx.stroke();
|
| 220 |
+
}
|
| 221 |
+
eos = eos_;
|
| 222 |
+
cur_x = cur_x + dx;
|
| 223 |
+
cur_y = cur_y + dy;
|
| 224 |
+
|
| 225 |
+
if (att_location.dataSync()[0] < original_text.length + 1.5) {
|
| 226 |
+
setTimeout(function() {loop(my_run_id);}, 0);
|
| 227 |
+
}
|
| 228 |
+
}
|
| 229 |
+
}
|
| 230 |
+
|
| 231 |
+
loop(run_id);
|
| 232 |
+
}
|
| 233 |
+
|
| 234 |
+
|
| 235 |
+
window.onload = function(e) {
|
| 236 |
+
//Setting up canvas
|
| 237 |
+
canvas = document.getElementById("hw-canvas");
|
| 238 |
+
ctx = canvas.getContext("2d");
|
| 239 |
+
scale_factor = window.innerWidth / 1600;
|
| 240 |
+
ctx.canvas.width = window.innerWidth;
|
| 241 |
+
ctx.canvas.height = window.innerHeight;
|
| 242 |
+
|
| 243 |
+
}
|