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@ -185,6 +185,42 @@ def pinv(x):
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mx = lmx[0]
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return mx
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def det(x):
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from functools import partial
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def T(x):
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return np.swapaxes(x, -1, -2)
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_dot = partial(np.einsum, '...ij,...jk->...ik')
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def forward_code(np, data):
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a = data["inputs"][0]
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L = data["outputs"][0]
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tL = np.linalg.det(a)
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np.copyto(L, tL)
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def backward_code(np, data):
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dout = data["dout"]
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out = data["outputs"][0]
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f_out = data["f_outputs"][0]
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inp = data["inputs"][0]
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n_d = np.reshape(dout, np.shape(dout) + (1, 1))
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n_o = np.reshape(f_out, np.shape(f_out) + (1, 1))
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s = n_d * n_o * T(np.linalg.inv(inp))
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np.copyto(out, s)
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s = jt.array(x.shape).data.tolist()
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x_s = s[:-2]
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if len(s) == 2:
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x_s.append(1)
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l_det = jt.numpy_code(
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[x_s],
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[x.dtype],
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[x],
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forward_code,
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[backward_code],
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)
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det = l_det[0]
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return det
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def slogdet(x):
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from functools import partial
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def T(x):
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@ -221,3 +257,74 @@ def slogdet(x):
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[backward_code],
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)
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return sign, mx
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def cholesky(x):
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from functools import partial
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def T(x):
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return np.swapaxes(x, -1, -2)
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_dot = partial(np.einsum, '...ij,...jk->...ik')
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def forward_code(np, data):
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a = data["inputs"][0]
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L = data["outputs"][0]
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tL = np.linalg.cholesky(a)
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np.copyto(L, tL)
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def backward_code(np, data):
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dout = data["dout"]
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out = data["outputs"][0]
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f_out = data["f_outputs"][0]
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solve_trans = lambda a, b: np.linalg.solve(T(a), b)
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phi = lambda X: np.tril(X) / (1. + np.eye(X.shape[-1]))
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def conjugate_solve(L, X):
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return solve_trans(L, T(solve_trans(L, T(X))))
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s = conjugate_solve(f_out, phi(np.einsum('...ki,...kj->...ij', f_out, dout)))
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s = (s + T(s)) / 2.
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np.copyto(out, s)
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lL = jt.numpy_code(
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[x.shape],
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[x.dtype],
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[x],
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forward_code,
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[backward_code],
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)
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L = lL[0]
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return L
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def solve(a,b):
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from functools import partial
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def T(x):
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return np.swapaxes(x, -1, -2)
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_dot = partial(np.einsum, '...ij,...jk->...ik')
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def forward_code(np, data):
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a, b = data["inputs"]
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L = data["outputs"][0]
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ans = np.linalg.solve(a, b)
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np.copyto(L, ans)
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def backward_code1(np, data):
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dout = data["dout"]
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out = data["outputs"][0]
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f_out = data["f_outputs"][0]
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inp = data["inputs"][0]
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updim = lambda x: x if x.ndim == a.ndim else x[..., None]
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t = -_dot(updim(np.linalg.solve(T(inp), dout)), T(updim(f_out)))
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np.copyto(out, t)
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def backward_code2(np, data):
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out = data["outputs"][0]
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np.copyto(out, 0)
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l_ans = jt.numpy_code(
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[b.shape],
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[b.dtype],
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[a, b],
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forward_code,
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[backward_code1, backward_code2],
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)
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ans = l_ans[0]
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return ans
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