PS 26055SOFTWAREClean & Green TechnologyHeavy R&D

Smart Scan strategy for Electronic Warfare

DRDODepartment of Defence Production /IDEX
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30-Second Plain English Summary

In modern contested electromagnetic battlefields, enemy radars constantly change pulse repetition frequencies (PRF), beam scanning patterns, and frequency-hopping sequences to evade detection, while conventional wideband Electronic Warfare (EW) receivers suffer from blind spots and high search latency. Build an AI-driven Smart Scan Strategy and cognitive radar interception platform for DRDO that uses Reinforcement Learning and Bayesian search to dynamically optimize receiver dwell times, anticipate agile radar sweeps, and maximize probability of intercept (POI).

5-Dimension Strategic ScorecardOverall Score: 4 / 5.0
Innovation
4 / 5
36h Feasibility
4.5 / 5
Uniqueness
3.5 / 5
Jury Appeal
3.8 / 5
Tech Depth
4.2 / 5
Recommended System Architecture Pipeline
Wideband SDR Receiver -> High-Speed PDW Generator -> Deep RL Cognitive Scan Scheduler -> Emitter Classification Library -> DRDO EW Tactical Console
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Official Government Problem Description
Development of Smart Scan Strategy for Electronic Warfare in the absence of prior reliable intelligence of emitters and their operating characteristics. • Background Detection of hostile communication or radar signals starts with search / scan of a wide frequency spectrum which covers relevant emitters. Sensors with typically high sensitivity but with at least an order lower instantaneous bandwidth compared to overall bandwidth of the system are used to maintain surveillance over the entire spectrum. This requires a receiver / receivers to sweep over frequency bands. Hitherto strategies based on pre mission data / prior data (Open loop) are used. Usually the first priority is to rapidly sweep the entire band with the best speed possible. Open loop strategies focus only on this requirement and may lose time to nonthreatening emitters by not giving time to new or threatening ones. • Detailed Description This problem statement focusses on development of Smart Scan Strategy for Electronic Warfare. Interception of signals is a two dimensional search problem since it involves adjusting receiver's frequency at correct time. This includes building up figures of merit for interception performance such as probability of detection, probability of false alarm, sensitivity, Avg intercept rate, Avg Reward / cost function, percentage of correct predictions and average intercept time error. A system model for the receiver needs to be developed with measurements obtained from a simulated RF environment which has truth information on status of emitters in each band and at each time slot. The frequency spectrum for own receiver consists of many bands. The status of environment for each frequency band at each time step can be recorded as a transmission or a non-transmission. The model should enable prediction of intercept time and interception ratio of a scanning receiver against spatially scanning and frequency agile emitters. Development of a robust scheduler using machine learning to minimize intercept time and ensure a high interception rate is the primary objective of the strategy. The model should then be trained based on hits and misses. Further, approaches to intercept a periodic scan receiver optimally should be outlined. Algorithms and techniques for the same need to be developed. • Expected Solution Machine learning based Electronic Support receiver scheduler software
AI & PPT Citation Format

Smart India Hackathon 2026 Problem Statement PS-26055: "Smart Scan strategy for Electronic Warfare", Ministry: DRDO. Strategy & Architecture via SIH ONE (https://sihone.pages.dev/ps/26055)

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