mimtek Posted December 10, 2017 Report Share Posted December 10, 2017 (edited) Using DLL instead of interpreted code allows you to significantly speed up the process of optimization and testing of systems and not to rewrite codes of functions and systems for different technical analysis programs, and use existing DLLs in all programs that can call external DLLs. Tell me where can I find the source code for the functions of technical analysis in C ++, Delphi, VB, as well as DLLs and examples of writing DLL with these functions? Under the functions of technical analysis, I mean the functions that are used to analyze time series. For example, parabolic, linear regression, various types of moving averages, RSI, stochastics, finding local extrema, momentum, statistical functions, and so on. Multi-Platform Tools for Market Analysis ... TA-Lib is widely used by trading software developers requiring to perform technical analysis of financial market data. Includes 200 indicators such as ADX, MACD, RSI, Stochastic, Bollinger Bands etc... (more info) Candlestick pattern recognition Open-source API for C/C++, Java, Perl, Python and 100% Managed .NET Free Open-Source Library TA-Lib is available under a BSD License allowing it to be integrated in your own open-source or commercial application. (more info) http://www.ta-lib.org/index.html various indicator codes and library suggestions C/C++, Java, Perl, Python .dll net java matlab vs ? Edited December 10, 2017 by mimtek Quote Link to comment Share on other sites More sharing options...
mimtek Posted December 10, 2017 Author Report Share Posted December 10, 2017 ALGLIB is a cross-platform numerical analysis and data processing library. It supports several programming languages (C++, C#, Delphi) and several operating systems (Windows and POSIX, including Linux). ALGLIB features include: Data analysis (classification/regression, statistics) Optimization and nonlinear solvers Interpolation and linear/nonlinear least-squares fitting Linear algebra (direct algorithms, EVD/SVD), direct and iterative linear solvers Fast Fourier Transform and many other algorithms ALGLIB Commercial Edition pls help shr http://www.alglib.net/ Quote Link to comment Share on other sites More sharing options...
mimtek Posted December 10, 2017 Author Report Share Posted December 10, 2017 IMSL Numerical Libraries Battle-tested algorithms from prototype to production Analyzing data has never been more important — or harder. Getting actionable information from your large and disparate datasets can often determine if your organization meets its goals. Create competitive differentiation and unlock innovation by using the most trusted, tested, and reliable algorithms available. Backed by a team of mathematicians and statisticians, IMSL® Numerical Libraries allow you to address complex problems quickly with a variety of readily-available algorithms. With IMSL you get consistency from prototype to production. C / C++ Numerical Library pls help shr Quote Link to comment Share on other sites More sharing options...
mimtek Posted December 10, 2017 Author Report Share Posted December 10, 2017 (edited) but did not you see the full version of this library www.timeseriesapi.com/ pls help shr Order QTStalker - http://sourceforge.net/projects/qtstalker GStalker - http://sourceforge.net/project/?group_id=1001 GeniusTrader - http://www.geniustrader.org/ Market Analysis System - http://eiffel-mas.sourceforge.net/ MaWaTT Trading Toolkit - http://mawatt.berlios.de/ Merchant of Venice - http://mov.sourceforge.net/ XTrader - http://xtrader.sourceforge.net/ Lidgren technical stock analyzer - http://ltsa.sourceforge.net/ ProfitPY - http://profitpy.sourceforge.net/ Robotrader - http://jrobotrader.atspace.com/ Edited December 10, 2017 by mimtek Quote Link to comment Share on other sites More sharing options...
mimtek Posted December 10, 2017 Author Report Share Posted December 10, 2017 Intel® Math Kernel Library (Intel® MKL) optimizes code with minimal effort for future generations of Intel® processors. It is compatible with your choice of compilers, languages, operating systems, and linking and threading models. Features highly optimized, threaded, and vectorized math functions that maximize performance on each processor family Uses industry-standard C and Fortran APIs for compatibility with popular BLAS, LAPACK, and FFTW functions—no code changes required Dispatches optimized code for each processor automatically without the need to branch code Provides Priority Support that connects you directly to Intel engineers for confidential answers to technical questions https://software.intel.com/en-us/mkl Quote Link to comment Share on other sites More sharing options...
iDov Posted March 23, 2019 Report Share Posted March 23, 2019 Native Python Indicators: https://github.com/kylejusticemagnuson/pyti Accumulation/Distribution Aroon -Aroon Up -Aroon Down Average Directional Index Average True Range Average True Range Percent Bollinger Bands -Upper Bollinger Band -Middle Bollinger Band -Lower Bollinger Band -Bandwidth -Percent Bandwidth -Range -%B Chaikin Money Flow Chande Momentum Oscillator Commodity Channel Index Detrended Price Oscillator Double Exponential Moving Average Double Smoothed Stochastic Exponential Moving Average Hull Moving Average Ichimoku Cloud -TenkanSen -KijunSen -Chiku Span -Senkou A -Senkou B Keltner Bands -Bandwidth -Center Band -Upper Band -Lower Band Linear Weighted Moving Average Momentum Money Flow Money Flow Index Moving Average Convergence Divergence Moving Average Envelope -Upper Band -Center Band -Lower Band Negative Directional Index (-DI) Negative Directional Movement (-DM) On Balance Volume Positive Directional Index (+DI) Positive Directional Movement (+DM) Price Channels -Upper Price Channel -Lower Price Channel Price Oscillator Simple Moving Average Smoothed Moving Average Standard Deviation Standard Variance Stochastic -%K -%D StochRSI Rate of Change Relative Strength Index Triangular Moving Average Triple Exponential Moving Average True Range Typical Price Ultimate Oscillator Vertical Horizontal Filter Volatility Volume Adjusted Moving Average Volume Index -Positive Volume Index -Negative Volume Index Volume Oscillator Weighted Moving Average Williams %R ⭐ Iqbal 1 Quote Link to comment Share on other sites More sharing options...
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