A "code-what"? Unless you have spent some time working in the area of reverse engineering, chances are you have not heard of the term "codecave" before. If you have heard of it, you might not have read a clear definition of it or quite understand what it is or why it is useful. I have even asked seasoned assembly programmers about the term before and most of them had not heard of it. If it is new to you, do not worry, you are not the only one. It is a term that is scarcely used and is only useful in a reverse engineering context. Furthermore, is it "codecave" or "code cave"? I am not quite sure, but I will try my best to refer to it consistently as a "codecave". A space may sneak in there from time to time
標簽: engineering code-what chances reverse
上傳時間: 2014-01-17
上傳用戶:hn891122
Triangular mesh processing tool, currently very few people use this software, but it allows us to greatly reduce the time to deal with a lot of the grid.
標簽: Triangular processing currently software
上傳時間: 2013-12-09
上傳用戶:BOBOniu
Embedded microcontroller program (PicBasic) to implement RFID-based Medicine Teller system, used to inform the user about the time to take medicine, scanning RFID tags on the medicines, for elders use.
標簽: microcontroller RFID-based implement Embedded
上傳時間: 2017-07-04
上傳用戶:zhenyushaw
userial is an Free project building an USB to I2C/SPI/GPIO bridge, using the Atmel AT90USB647 chip. Hardware and Software are released under an Open Source licence. It supports the following interfaces: * USB interface (serial emulation) * JTAG * I2C (TWI) * SPI * 8 General purpose digital I/O * 4 Analog to Digital converters (currently no firmware support)
標簽: USB building userial project
上傳時間: 2013-12-25
上傳用戶:小鵬
From the transition of analog to digital communication along with seamless mobility and high computing power of small handheld devices, the wireless communications industry has seen tremendous changes leading to the integration of several telecommunication networks, devices and services over last 30 years. The rate of this progress and growth has increased particularly in the past decade because people no longer use their devices and networks for voice only, but demand bundle contents such as data download/streaming, HDTV, HD video , 3D video conferencing with higher efficiency, seamless connectivity, intelligence, reliability and better user experience. Although the challenges facing service providers and telecommunication companies differ by product, region, market size, and their areas of concentration but time to market, efficient utilization of their assets and revenue expansion, have impacted significantly how to manage and conduct their business while maintaining sufficient margin.
標簽: Convergence Networks Beyond 4G of
上傳時間: 2020-05-26
上傳用戶:shancjb
The design and manufacturing of wireless radio frequency (RF) transceivers has developed rapidly in recent ten yeas due to rapid development of RF integrated circuits and the evolution of high-speed digital signal processors (DSP). Such high speed signal processors, in conjunction with the development of high resolution analog to digital converters and digital to analog converters, has made it possible for RF designers to digitize higher intermediate frequencies, thus reducing the RF section and enhancing the overall performance of the RF section.
標簽: Transceivers Wireless Digital
上傳時間: 2020-05-27
上傳用戶:shancjb
Mobile multimedia communication is increasingly in demand because of the basic need to communi- cate at any time, anywhere, using any technology. In addition, to voice communication, people have a desire to access a range of other services that comprise multimedia elements—text, image, animation, high fidelity audio and video using mobile communication networks. To meet these demands, mobile communication technologies has evolved from analog to digital, and the networks have passed through a number of generations from first generation (1G) to fourth generation (4G).
標簽: Communications Multimedia Concepts Mobile
上傳時間: 2020-05-30
上傳用戶:shancjb
This edition of Digital Image Processing is a major revision of the book. As in the 1977 and 1987 editions by Gonzalez and Wintz, and the 1992, 2002, and 2008 editions by Gonzalez and Woods, this sixth-generation edition was prepared with students and instructors in mind. The principal objectives of the book continue to be to provide an introduction to basic concepts and methodologies applicable to digital image processing, and to develop a foundation that can be used as the basis for further study and research in this field. To achieve these objectives, we focused again on material that we believe is fundamental and whose scope of application is not limited to the solution of specialized problems. The mathematical complexity of the book remains at a level well within the grasp of college seniors and first-year graduate students who have introductory preparation in mathematical analysis, vectors, matrices, probability, statistics, linear systems, and computer programming. The book website provides tutorials to support readers needing a review of this background material
標簽: Processing Digital Image
上傳時間: 2021-02-20
上傳用戶:
隨著電子技術的不斷發(fā)展,各種智能核儀器逐步走向自動化、智能化、數(shù)字化和便攜式的方向發(fā)展。針對傳統(tǒng)的多道脈沖幅度分析器體積大,人機交互不友好,不方便現(xiàn)場分析等的缺陷[5]。新型的高速、集成度高、界面友好的多道脈沖幅度分析器的陸續(xù)出現(xiàn)填補了這一缺點。 隨著電子技術的發(fā)展,以ARM為核的處理器技術的應用領域不斷擴大,相比較單片機而言,它的主頻高、運算速度快,可以滿足多道脈沖幅度分析器的苛刻的時間上的要求。而且ARM處理器功耗小,適合于功耗要求比較苛刻的地方,這些方面的特點正好滿足了便攜式多道脈沖幅度分析器野外勘察的要求。同時,由于以ARM為核的處理器具有豐富的外設資源,這樣就簡化了外設電路及芯片的使用,降低了功耗并增強了產(chǎn)品的信賴性。另外,ARM芯片可以方便的移植操作系統(tǒng),為多道脈沖幅度分析器多任務的管理和并行的處理,甚至硬實時功能的實現(xiàn)提供了前提。而且在ARM平臺使用嵌入式linux操作系統(tǒng)使多道脈沖幅度分析器的軟件易于升級。 智能化和小型化是多道脈沖幅度分析器的發(fā)展趨勢。智能化要求系統(tǒng)的自動化程度高、操作簡便、容錯性好。智能化除了需要控制軟件外,還需要軟件命令的執(zhí)行者即硬件控制電路來實現(xiàn)相應的控制邏輯,兩者的結(jié)合才能真正的實現(xiàn)智能化。小型化要求系統(tǒng)的體積小、功耗小、便于攜帶;小型化除了要求采用微功耗的器件,還要求電路板的尺寸盡量的小且所用元件盡量的少,但小型化的同時必須保持系統(tǒng)的智能化,即不能減少智能化所要求的復雜的邏輯和時序的控制功能。為此采用高集成度的ARM芯片實現(xiàn)控制電路能滿意地同時滿足智能化和小型化的要求。在研制的多道脈沖幅度分析器中,幾乎所有的控制都可以用控制芯片來實現(xiàn),如閾值設定、自動穩(wěn)譜以及多道數(shù)據(jù)采集,在節(jié)省了元件的數(shù)目和電路板的尺寸的同時仍能保持系統(tǒng)的智能化程度。 Linux內(nèi)核精簡而高效,可修改性強,支持多種體系結(jié)構(gòu)的處理器等,使得它是一個非常適合于嵌入式開發(fā)和應用的操作系統(tǒng)。嵌入式Linux可以運行的硬件平臺十分廣泛,從x86、MIPS、POWERPC到ARM,以及其他許多硬件體系結(jié)構(gòu)。目前在世界范圍內(nèi),ARM體系結(jié)構(gòu)的SOC逐漸占領32位嵌入式微處理器市場,ARM處理器及技術的應用幾乎已經(jīng)深入到各個領域,例如:工業(yè)控制,無線通訊,網(wǎng)絡,消費類電子,成像等。 本課題采用三星公司生產(chǎn)的ARM(Advanced RISC Machines,先進精簡指令集機器)芯片S3C2410A設計并研制了一種便攜式的核數(shù)據(jù)采集系統(tǒng)設計方案。利用ARM芯片豐富的外設資源對傳統(tǒng)的多道脈沖幅度分析器進行改進和簡化。系統(tǒng)由前端探測器系統(tǒng),以及由線性脈沖放大器、甄別電路、控制電路、采樣保持電路組成的前置電路,中央處理器模塊,顯示模塊,用戶交互模塊,存儲模塊,網(wǎng)絡傳輸模塊等多個模塊組成。本設計基于ARM9芯片S3C2410,并在此平臺上移植了嵌入式linux操作系統(tǒng)來進行任務的調(diào)度和處理等。 電路板核心板部分設計采用6層PCB板結(jié)構(gòu),這樣增加了系統(tǒng)可靠性,提高了電磁兼容的穩(wěn)定性。數(shù)據(jù)采集系統(tǒng)是多道脈沖幅度分析器的核心,A/D轉(zhuǎn)換直接使用了S3C2410內(nèi)置的ADC(Analog to Digital Converter,模數(shù)轉(zhuǎn)換器),在2.5 MHz的轉(zhuǎn)換時鐘下最大轉(zhuǎn)換速度500 KSPS(Kilo-Samples per second,千采樣點每秒),滿足了系統(tǒng)最低轉(zhuǎn)換時間≤5 μs的要求,并且控制簡單,簡化了外部接口電路。由于SD(Secure Digital Card,安全數(shù)碼卡)卡存儲容量大、攜帶方便、成本低等優(yōu)點,所以設計中采用其作為外部的數(shù)據(jù)存儲設備,其驅(qū)動部分采用SD卡軟件包,為開發(fā)帶來了方便。本設計采用640*480的6.4寸LCD(Liquid Crystal Display,液晶顯示)屏作為人機交互的顯示部分,并且通過Qt/Embedded為系統(tǒng)提供圖形用戶界面的應用框架和窗口系統(tǒng)。其中包括了波形顯示部分和用戶菜單設置部分,這樣方便了用戶操作。系統(tǒng)的數(shù)據(jù)存取方面是基于SQLite嵌入式小型數(shù)據(jù)庫而進行的。為了方便數(shù)據(jù)向上位機的傳輸,系統(tǒng)設計中采用XML(Extensible Markup Language,可擴展標記語言)格式來組織傳輸?shù)臄?shù)據(jù),通過基于TCP/IP(Transmission Control Protocol/Internet Protocol)協(xié)議的Linux下Socket套接字編程,來進行與上位機或PC(Personal Computer,個人計算機或桌面機)等的連接和數(shù)據(jù)傳輸。
上傳時間: 2013-04-24
上傳用戶:tzl1975
隨著半導體工藝的飛速發(fā)展和芯片設計水平的不斷進步,ARM微處理器的性能得到大幅度地提高,同時其芯片的價格也在不斷下降,嵌入式系統(tǒng)以其獨有的優(yōu)勢,己經(jīng)廣泛地滲透到科學研究和日常生活的各個方面。 本文以ARM7 LPC2132處理器為核心,結(jié)合蓋革一彌勒計數(shù)管對Time-To-Count輻射測量方法進行研究。ARM結(jié)構(gòu)是基于精簡指令集計算機(RISC)原理而設計的,其指令集和相關的譯碼機制比復雜指令集計算機要簡單得多,使用一個小的、廉價的ARM微處理器就可實現(xiàn)很高的指令吞吐量和實時的中斷響應。基于ARM7TDMI-S核的LPC2132微處理器,其工作頻率可達到60MHz,這對于Time-To-Count技術是非常有利的,而且利用LPC2132芯片的定時/計數(shù)器引腳捕獲功能,可以直接讀取TC中的計數(shù)值,也就是說不再需要調(diào)用中斷函數(shù)讀取TC值,從而大大降低了計數(shù)前雜質(zhì)時間。本文是在我?guī)熜謪诬姷摹禩ime-To-Count測量方法初步研究》基礎上,使用了高速的ARM芯片,對基于MCS-51的Time-To-Count輻射測量系統(tǒng)進行了改進,進一步論證了采用高速ARM處理器芯片可以極大的提高G-M計數(shù)器的測量范圍與測量精度。 首先,討論了傳統(tǒng)的蓋革-彌勒計數(shù)管探測射線強度的方法,并指出傳統(tǒng)的脈沖測量方法的不足。然后討論了什么是Time-To-Count測量方法,對Time-To-Count測量方法的理論基礎進行分析。指出Time-To-Count方法與傳統(tǒng)的脈沖計數(shù)方法的區(qū)別,以及采用Time-To-Count方法進行輻射測量的可行性。 接著,詳細論述基于ARM7 LPC2132處理器的Time-To-Count輻射測量儀的原理、功能、特點以及輻射測量儀的各部分接口電路設計及相關程序的編制。 最后得出結(jié)論,通過高速32位ARM處理器的使用,Time-To-Count輻射測量儀的精度和量程均得到很大的提高,對于Y射線總量測量,使用了ARM處理器的Time-To-Count輻射測量儀的量程約為20 u R/h到1R/h,數(shù)據(jù)線性程度也比以前的Time-To-CotJnt輻射測量儀要好。所以在使用Time-To-Count方法進行的輻射測量時,如何減少雜質(zhì)時間以及如何提高計數(shù)前時間的測量精度,是決定Time-To-Count輻射測量儀性能的關鍵因素。實驗用三只相同型號的J33G-M計數(shù)管分別作為探測元件,在100U R/h到lR/h的輻射場中進行試驗.每個測量點測量5次取平均,得出隨著照射量率的增大,輻射強度R的測量值偏小且與輻射真實值之間的誤差也隨之增大。如果將測量誤差限定在10%的范圍內(nèi),則此儀器的量程范圍為20 u R/h至1R/h,量程跨度近六個數(shù)量級。而用J33型G-M計數(shù)管作常規(guī)的脈沖測量,量程范圍約為50 u R/h到5000 u R/h,充分體現(xiàn)了運用Time-To-Count方法測量輻射強度的優(yōu)越性,也從另一個角度反應了隨著計數(shù)前時間的逐漸減小,雜質(zhì)時間在其中的比重越來越大,對測量結(jié)果的影響也就越來越嚴重,盡可能的減小雜質(zhì)時間在Time-To-Count方法輻射測量特別是測量高強度輻射中是關鍵的。筆者用示波器測出此輻射儀器的雜質(zhì)時間約為6.5 u S,所以在計算定時器值的時候減去這個雜質(zhì)時間,可以增加計數(shù)前時間的精確度。通過實驗得出,在標定儀器的K值時,應該在照射量率較低的條件下行,而測得的計數(shù)前時間是否精確則需要在照射量率較高的條件下通過儀器標定來檢驗。這是因為在照射量率較低時,計數(shù)前時間較大,雜質(zhì)時間對測量結(jié)果的影響不明顯,數(shù)據(jù)線斜率較穩(wěn)定,適宜于確定標定系數(shù)K值,而在照射量率較高時,計數(shù)前時間很小,雜質(zhì)時間對測量結(jié)果的影響較大,可以明顯的在數(shù)據(jù)線上反映出來,從而可以很好的反應出儀器的性能與量程。實驗證明了Time-To-Count測量方法中最為關鍵的環(huán)節(jié)就是如何對計數(shù)前時間進行精確測量。經(jīng)過對大量實驗數(shù)據(jù)的分析,得到計數(shù)前時間中的雜質(zhì)時間可分為硬件雜質(zhì)時間和軟件雜質(zhì)時間,并以軟件雜質(zhì)時間為主,通過對程序進行合理優(yōu)化,軟件雜質(zhì)時間可以通過程序的改進而減少,甚至可以用數(shù)學補償?shù)姆椒▉淼窒瑥亩梢缘玫奖容^精確的計數(shù)前時間,以此得到較精確的輻射強度值。對于本輻射儀,用戶可以選擇不同的工作模式來進行測量,當輻射場較弱時,通常采用規(guī)定次數(shù)測量的方式,在輻射場較強時,應該選用定時測量的方式。因為,當輻射場較弱時,如果用規(guī)定次數(shù)測量的方式,會浪費很多時間來采集足夠的脈沖信號。當輻射場較強時,由于輻射粒子很多,產(chǎn)生脈沖的頻率就很高,規(guī)定次數(shù)的測量會加大測量誤差,當選用定時測量的方式時,由于時間的相對加長,所以記錄的粒子數(shù)就相對的增加,從而提高儀器的測量精度。通過調(diào)研國內(nèi)外先進核輻射測量儀器的發(fā)展現(xiàn)狀,了解到了目前最新的核輻射總量測量技術一Time-To-Count理論及其應用情況。論證了該新技術的理論原理,根據(jù)此原理,結(jié)合高速處理器ARM7 LPC2132,對以G-計數(shù)管為探測元件的Time-To-Count輻射測量儀進行設計。論文以實驗的方法論證了Time-To-Count原理測量核輻射方法的科學性,該輻射儀的量程和精度均優(yōu)于以前以脈沖計數(shù)為基礎理論的MCS-51核輻射測量儀。該輻射儀具有量程寬、精度高、易操作、用戶界面友好等優(yōu)點。用戶可以定期的對儀器的標定,來減小由于電子元件的老化對低儀器性能參數(shù)造成的影響,通過Time-To-Count測量方法的使用,可以極大拓寬G-M計數(shù)管的量程。就儀器中使用的J33型G-M計數(shù)管而言,G-M計數(shù)管廠家參考線性測量范圍約為50 u R/h到5000 u R/h,而用了Time-To-Count測量方法后,結(jié)合高速微處理器ARM7 LPC2132,此核輻射測量儀的量程為20 u R/h至1R/h。在允許的誤差范圍內(nèi),核輻射儀的量程比以前基于MCS-51的輻射儀提高了近200倍,而且精度也比傳統(tǒng)的脈沖計數(shù)方法要高,測量結(jié)果的線性程度也比傳統(tǒng)的方法要好。G-M計數(shù)管的使用壽命被大大延長。 綜上所述,本文取得了如下成果:對國內(nèi)外Time-To-Count方法的研究現(xiàn)狀進行分析,指出了Time-To-Count測量方法的基本原理,并對Time-T0-Count方法理論進行了分析,推導出了計數(shù)前時間和兩個相鄰輻射粒子時間間隔之間的關系,從數(shù)學的角度論證了Time-To-Count方法的科學性。詳細說明了基于ARM 7 LPC2132的Time-To-Count輻射測量儀的硬件設計、軟件編程的過程,通過高速微處理芯片LPC2132的使用,成功完成了對基于MCS-51單片機的Time-To-Count測量儀的改進。改進后的輻射儀器具有量程寬、精度高、易操作、用戶界面友好等特點。本論文根據(jù)實驗結(jié)果總結(jié)出了Time-To-Count技術中的幾點關鍵因素,如:處理器的頻率、計數(shù)前時間、雜質(zhì)時間、采樣次數(shù)和測量時間等,重點分析了雜質(zhì)時間的組成以及引入雜質(zhì)時間的主要因素等,對國內(nèi)核輻射測量儀的研究具有一定的指導意義。
標簽: TimeToCount ARM 輻射測量儀
上傳時間: 2013-06-24
上傳用戶:pinksun9