博碩士論文 995203047 完整後設資料紀錄

DC 欄位 語言
DC.contributor通訊工程學系zh_TW
DC.creator黃崇瑋zh_TW
DC.creatorChung-Wei Huangen_US
dc.date.accessioned2013-1-4T07:39:07Z
dc.date.available2013-1-4T07:39:07Z
dc.date.issued2013
dc.identifier.urihttp://ir.lib.ncu.edu.tw:88/thesis/view_etd.asp?URN=995203047
dc.contributor.department通訊工程學系zh_TW
DC.description國立中央大學zh_TW
DC.descriptionNational Central Universityen_US
dc.description.abstract無線感測網路(WSNs) 是由具有感測能力、計算能力及無 線通信能力的感測器所組成,這些感測器具備著體積小、低成本、 低功耗的特性,在感測器有著前述的特性之下,本篇研究是以接 收訊號強度(RSS) 等數據並且對其做量化(Quantization),處理中心 (Fusion center) 以此量化訊號(Quantized data) 並利用最小平方估計 法做定位,當量化階數少的時候,為了降低量化誤差造成目標函式 過多的誤差,在最小平方估計裡加入μ − law 壓縮原始訊號,得到 不錯的效果;這裡的問題屬於非線性最小平方估計,研究中也依 據高斯-牛頓法以及NM-單純形搜索法解決此最佳化問題;在量化臨界值(Quantization threshold) 上,利用Numirical 方式提出適合最 小平方估計的最佳量化臨界值,其均方根(Root Mean Square, RMS) 位置誤差也接近MLE 以及CRLB;此外,並延伸出找到適合所有 位置的量化臨界值,使用在此最小平方估計問題中。zh_TW
dc.description.abstractWireless sensor networks (WSNs) conventionally consist of a large number of low-cost, low-power, densely distributed, and mostly heterogeneous sensors. For the localization application, the target signal strength in a WSN is usually reported by sensors with quantized levels and all quantized data are collected in a fusion center to estimate the target location based on a nonlinear relationship between distance and signal strength. Instead of using the computation-intensive maximum likelihood (ML) method, we study the least squares method by which the least squares cost function is significantly deteriorated due to nonlinear parameter estimation. To solve this problem, the μ-law compression technique is considered for robust position estimation. Two nonlinear least squares estimation methods, Gauss-Newton and Nelder-Mead, are discussed in our work. Numerical results show that the proposed method can achieve a good mean square error performance close to the ML method with lower computation loading.en_US
DC.subject無線感測網路zh_TW
DC.subject最小平方法zh_TW
DC.subject高斯牛頓法zh_TW
DC.subject目標物定位zh_TW
DC.title以高斯-牛頓與內爾德-米德非線性最小平方法用於無線感測網路之目標物定位zh_TW
dc.language.isozh-TWzh-TW
DC.titleGauss-Newton and Nelder-Mead Nonlinear Least Squares Methods for Target Localization in Wireless Sensor Networksen_US
DC.type博碩士論文zh_TW
DC.typethesisen_US
DC.publisherNational Central Universityen_US

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