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Auto-score System to Optimize OPC Recipe Parameters Using Genetic Algorithm

机译:使用遗传算法优化OPC配方参数的自动评分系统

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The ever increasing pattern densities and design complexities make the tuning of optical proximity correction (OPC) recipes more challenging. There are various recipe tuning methods to meet the challenge, such as genetic algorithm (GA), simulated annealing, and OPC software vendor provided recipe optimizers. However, these methodologies usually only consider edge placement errors (EPEs). Therefore, these techniques may not provide adequate freedom to solve unique problems at special geometries, for example bridge, pinch, and process variation band related violations at complex 2D geometries. This paper introduces a general methodology to fix specific problems identified at the OPC verification stage and demonstrates its successful application to two test-cases. The algorithm and method of the automatic scoring system is introduced in order to identify and prioritize the problems that need to be fixed based on severity, with the POR recipe score used as the baseline reference. A GA optimizer, whose objective function is based on the scoring system, is applied to tune the OPC recipe parameters to optimum condition after generations of selections. The GA optimized recipe would be compared to existing recipe to quantify the amount of improvement. This technique was subsequently applied to eliminate certain chronic OPC verification problems which were encountered in the past. Though the benefits have been demonstrated for limited test cases, employing this technique more universally will enable users to efficiently reduce the number of OPC verification violations and provide robust OPC solutions.
机译:不断增加的模式密度和设计复杂性使得光学邻近校正的调整(OPC)食谱更具挑战性。有各种配方调整方法以满足挑战,例如遗传算法(GA),模拟退火和OPC软件供应商提供了配方优化器。但是,这些方法通常只考虑边缘放置错误(EPES)。因此,这些技术可能无法提供足够的自由来解决特殊几何形状的独特问题,例如桥梁,捏合和在复杂的2D几何形状中的相关违规。本文介绍了一种普遍的方法,可以解决在OPC验证阶段确定的特定问题,并证明其成功应用于两个测试用例。引入了自动评分系统的算法和方法,以便根据严重性来识别并优先考虑需要固定的问题,并使用POR配方评分作为基线参考。 GA优化器,其客观函数基于评分系统,应用于在几代选择后调整OPC配方参数以最佳状态。 GA优化的配方将与现有配方进行比较,以量化改进量。随后应用该技术以消除过去遇到的某些慢性OPC验证问题。虽然已对有限的测试用例进行了证明的好处,但使用这种技术更普遍将使用户能够有效地减少OPC验证违规的数量并提供强大的OPC解决方案。

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