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Ansys optiSLang 2026 R1

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©2026 ANSYS, Inc. 4 New Signal Models LSTM • Parameters are repeated and stacked with the index "t" times • The LSTM is used to predict one element at a time until the entire signal is predicted • Current output is fed back into the cell at the next step -> introduce a memory behavior LSTM P1 , P2, .. Pn, X1 . . . P1, P2, .. Pn, Xt n: number of parameters t: signal length S1 . . . St NN P1 , P2, .. Pn, X1 IndexNN • The problem is scalarized: every signal element is modeled as a single scalar problem • The index is appended as a parameter at the input • The NN predicts an element at a time • The approximation function is responsible for reconstructing the initial signal P1 , P2, .. Pn, X2 P1 , P2, .. Pn, Xt S1 S2 St

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