69 results for “topic:cme”
C++ interfaces used to communicate with Roq's market gateways.
cot_reports is a Python library for fetching the Commitments of Trader reports of the Commodity Futures Trading Commission (CFTC). The following COT reports are supported: Legacy Futures-only, Legacy Futures-and-Options Combined, Supplemental Futures-and-Options Combined, Disaggregated Futures-only, Disaggregated Futures-and-Options Combined, Traders in Financial Futures (TFF) Futures-only and Traders in Financial Futures (TFF) Futures-and-Options Combined.
Java Market Data Handler for CME Market Data (MDP 3.0)
This is a Python 3.10+ trading bot that monitors CME E-mini S&P 500 futures (ES) vs SPDR S&P 500 ETF (SPY) and trades a simplified cash-and-carry / reverse cash-and-carry signal when the futures price deviates from a theoretical fair value:
Perl module to create configuration editor with semantic validation
A minimalist, low-latency, HFT CME MDP3.0 C++ market data feed handler and pcap file reader (MDP 3.0)
Accelerator for customer incentive investment using causal inference techniques
Risk tools for commodities trading and finance
Translating text attributes (like name, address, phone number) into quantifiable numerical representations Training ML models to determine if these numerical labels form a match Scoring the confidence of each match
Perform fine-grained forecasting at the store-item level in an efficient manner, leveraging the distributed computational power of the Databricks Data Intelligence Platform.
Graduated cylindrical shell CME model in Python
Connect the impact of marketing and your ad spend to sales. Efficiently pinpoint the impact of various revenue-generating marketing activities to understand what works best. Focus on the best-performing channels to optimize media mix and drive revenue.
FIX order manager client for fix order routing in C++ using QuickFIX engine can be used for Trading Technologies (TT) or CQG and others
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Create advanced customer segments to drive better purchasing predictions based on behaviors. Using sales data, campaigns and promotions systems, this solution helps derive a number of features that capture the behavior of various households. Build useful customer clusters to target with different promos and offers.
Imandra Modelling Language CME MDP Model
From display to video, the value of an impression can only be realized if an ad is viewed by a user. Therefore, when using programmatic advertising to buy inventory, it’s important to take viewability into account. In this Solution Accelerator, learn how to predict ad viewability to optimize your real-time bidding strategy.
CME iLINK3 Connectivity
CME Arrival Time Prediction Using Convolutional Neural Network
Build a lakehouse for all your gamer data and use natural language processing techniques to flag questionable comments for moderation.
Survival analysis is a collection of statistical methods used to examine and predict the time until an event of interest occurs. In this Solution Accelerator, learn how to use different survival analysis techniques for predicting churn and calculating lifetime value.
Get started with our Solution Accelerator for Propensity Scoring to build effective propensity scoring pipelines that: Enable the persistence, discovery and sharing of features across various model training exercises Quickly generate models by leveraging industry best practices Track and analyze the various model iterations generated
Build a wide-and-deep recommender with collaborative filters that takes advantage of patterns of repeat purchases to suggest both previously purchased and related products.
Analyze the CME grain options markets in python
Use futures symbols to search and get their contract specs From CME website
Repository for Pachter Lab Biophysics
Campaigns Made Easy - Open Source Email Campaign Sysetm
CME SHARP Active region visualisation tool
This repository provides the python-based code for Coronal Mass Ejection(CME) arrival forecast using Drag Based Model(DBM).
Professional-grade options pricing and analytics platform with real-time market data, advanced visualization, and multiple option pricing models.