TWM352721U - Touch sensing device, module, electronic device and mobile telephone - Google Patents
Touch sensing device, module, electronic device and mobile telephone Download PDFInfo
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- TWM352721U TWM352721U TW097200124U TW97200124U TWM352721U TW M352721 U TWM352721 U TW M352721U TW 097200124 U TW097200124 U TW 097200124U TW 97200124 U TW97200124 U TW 97200124U TW M352721 U TWM352721 U TW M352721U
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/0416—Control or interface arrangements specially adapted for digitisers
- G06F3/04166—Details of scanning methods, e.g. sampling time, grouping of sub areas or time sharing with display driving
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F1/00—Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
- G06F1/26—Power supply means, e.g. regulation thereof
- G06F1/32—Means for saving power
- G06F1/3203—Power management, i.e. event-based initiation of a power-saving mode
- G06F1/3234—Power saving characterised by the action undertaken
- G06F1/325—Power saving in peripheral device
- G06F1/3262—Power saving in digitizer or tablet
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F1/00—Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
- G06F1/26—Power supply means, e.g. regulation thereof
- G06F1/32—Means for saving power
- G06F1/3203—Power management, i.e. event-based initiation of a power-saving mode
- G06F1/3234—Power saving characterised by the action undertaken
- G06F1/325—Power saving in peripheral device
- G06F1/3265—Power saving in display device
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/0416—Control or interface arrangements specially adapted for digitisers
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/0416—Control or interface arrangements specially adapted for digitisers
- G06F3/04166—Details of scanning methods, e.g. sampling time, grouping of sub areas or time sharing with display driving
- G06F3/041661—Details of scanning methods, e.g. sampling time, grouping of sub areas or time sharing with display driving using detection at multiple resolutions, e.g. coarse and fine scanning; using detection within a limited area, e.g. object tracking window
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/044—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/044—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
- G06F3/0445—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means using two or more layers of sensing electrodes, e.g. using two layers of electrodes separated by a dielectric layer
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/044—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
- G06F3/0446—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means using a grid-like structure of electrodes in at least two directions, e.g. using row and column electrodes
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/047—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means using sets of wires, e.g. crossed wires
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F2203/00—Indexing scheme relating to G06F3/00 - G06F3/048
- G06F2203/041—Indexing scheme relating to G06F3/041 - G06F3/045
- G06F2203/04101—2.5D-digitiser, i.e. digitiser detecting the X/Y position of the input means, finger or stylus, also when it does not touch, but is proximate to the digitiser's interaction surface and also measures the distance of the input means within a short range in the Z direction, possibly with a separate measurement setup
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F2203/00—Indexing scheme relating to G06F3/00 - G06F3/048
- G06F2203/041—Indexing scheme relating to G06F3/041 - G06F3/045
- G06F2203/04104—Multi-touch detection in digitiser, i.e. details about the simultaneous detection of a plurality of touching locations, e.g. multiple fingers or pen and finger
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- Engineering & Computer Science (AREA)
- Theoretical Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Human Computer Interaction (AREA)
- Position Input By Displaying (AREA)
Description
充丨 M352721 ρτΓδΠ / 年月 八、新型說明: ^~—— 【先前技術】 - 近來,用於電子裝置及電腦系統的基於觸控及/或近接 . 之輸入系統越來越令人感興趣,其能夠同時辨識多個觸控 及/或懸浮事件。此等系統中有許多系統,例如該些基於 互電容或特定的光學感測配置之系統,用於向複數個感測 點施加週期性刺激波形並偵測可以藉由存在於該感測點處 的觸控及/或近接數量而與該週期性刺激波形相關之感測 _ 波形。在一些具體實施例中,此等系統向在該等感測點處 耦合至感測線之驅動線施加週期性刺激波形。一般地,採 取一次一線之方式向此等驅動線施加刺激波形。由於裝置 一般包括複數個此等驅動線,因此依序驅動每一驅動線。 【新型内容】 依據本創作之一具體實施例,提供一種從一觸控敏感表 面導出觸控資訊之方法。該觸控敏感裝置可包括複數個感 測點。每一感測點可位於一驅動線與一感測線之一交越或 鲁 其附近。例如,該方法可包括藉由一或多個唯一驅動信號 來同時(或實質上同時)刺激複數個該等驅動線。例如,該 等信號可具有預定的相位及/或頻率關係。該方法可進一 步包括感測在該等感測線的至少一線上之一感測信號。該 感測信號可藉由一或多個物件對位於該複數個驅動線與該 至少一感測線的交越處或其附近之一或多個感測點之觸控 或近接而與該等驅動信號相關。該方法還可包括(例如)從 該感測信號導出觸控資訊。可藉由從該感測信號導出複數 M352721 97· 8* 11正1 年月曰、i^
. 補无I 個值,例如藉由在—弗夕 — 夕個時間週期求該感測信號積分並 從該複數個值之一數擧έ 予組合導出觸控資訊,來從該感測信 號導出觸控。 在另-具體實施例中’本創作可以係關於一種多觸控感 測裝置。該觸控感測裝置可包括“列如卜觸控敏感表面, 其具有位於驅動線與感測線之一交越處的複數個感測點。 該觸控感測裝置還可π & j Μ包括經組態用以同時向複數個該等 驅動線施加唯一驅動信號之驅動電路。例如,該等信號可 具有預定的相位及/痞瓶、奋β 1 ^ &頻率關係。該觸控感測裝置還可包 括n癌用以偵測在至少一感測線中的一感測信號並針對 該等感測點之-或多個點從此感測信號導出觸控資訊之感 測電路。此-觸控感測裝置可以係基於(例如)自電容或互 電容。 在另一具體實施財,本創作可關於-種如上所述併入 -觸控感職置或實施—觸控感财法之電子裝置或電腦 系統。該電子裝置可以採取各種形式,包括(例如)桌上型 電腦、平板型電腦、筆記型電腦、手持式電腦、個人數位 助理、媒體播放器或行動電話。亦可以採用其他形式因 數0 在另-具體實施例中,本創作可以係關於—種從_觸控 敏感表面導出觸控資訊之方法。該方法可包括執行對該觸 控敏感表面之一區域之一粗略掃描以決定在該第—區域内 是否存在-觸控1存在〆觸控,則可執行對該區域之精 細掃描以決定關於存在於該區域内的—或多個觸控之更= M352721 Γ·8. 1Ψ正丨 … LilJmi 確的資料。若不存在一觸控,則可以省略精細掃描,而可 以開始進行對另-區域之一粗略掃描。藉由消除不必要的 精細掃描’可以由此節省時間及電力。 【實施方式】 可以藉由如圖1所示之一多觸控感測配置來實現對多個 同時或接近同時觸控事件之辨識。多觸控感測配置100可 同時、接近同時、於不同時間或者在一時間週期偵測及監 視橫跨觸控敏感表面101之多個觸控屬性(包括,例如,識 别位置、速度、尺寸、形狀及量值)。觸控敏感表面101 可以k t、實質上彼此不相關地發揮功能並代表在一觸控敏 感表面上的不同點之複數個感測點、座標或節點1〇2。感 測點102可以係定位於一栅格或一像素陣列中而各感測 點月b夠同時產生- ^號。可將感測點丄〇2視為將觸控敏感 表面1〇1映射進一座標系統,例如一笛卡爾(Cartesian)或極 座標系統。 一觸控敏感表面可以(例如)採取一平板型或一觸控螢幕 之形式為產生一觸控螢幕,可以藉由一實質上透明的導 電媒體(例如氧化銦錫(IT0))來形成電容感測點及其他相關 聯的電結構。可以改變感測點1〇2之數目及組態。感測點 102之數目一般係由所需的解析度及敏感度決定。在觸控 螢幕應用中,感測點102之數目還可由該觸控螢幕之所需 透明度決定。 使用多觸控感測配置,如下面更詳細說明之配置,在 多觸控感測器101的節點102處產生之信號可用於在一特定 M352721 年月日fit 時刻產生該等觸控之n 接觸或近接之每一物件 ,與觸控敏感表面1〇1 觸一,如圓2所(示]= 蓋數個節點102。所覆蓋㈣%2_補_之每一區可覆 餘節點H)2不可以谓測 則貞測該物件’而其 面平面之-像素化影像(其可稱為因此顧可以形成該觸控表 影像或一近接影像)。可 控影像、一多觸控 ^ ^ 字針對母—接觸修補區201之信 ㈣在-起。每—接觸修補區2〇1 的觸控量之高與低點。接觸 义據每-點處 内的含盥血 > 補區201之形狀以及該影像 2〇/。此外點可用於區分彼此緊密近接之接觸修補區 兮等物H可以將當前㈣與先前影像相比較,以決定 可以隨時間移動,以及因此將在-主機裝置 中執仃什麼對應動作。 了以,合此等感測配置使用許多不同感測技術,包括電 阻、電容、光學等。在基於電容之感測配置中,隨著一物 件接近觸控敏感表面101,在該物件與近接該物件的感測 ㈣2之間形成一小電容。藉由積測在該等感測點⑽的每 「點處由此小電容引起的電容變化,以及藉由標注該等感 :則點之位置’ 一感測電路1〇3可以偵測及監視多個觸控。 β亥等電容感測節點可以係基於自電容或互電容。 在自電谷系統中,相對於某一參考(例如,接地)來測量 感測點之’'自"電容。感測點102可以係空間分離的電 極。此等電極係藉由導電迹線I〇5a(驅動線)及l〇5b(感測 線)而輕合至驅動電路104及感測電路103。在某些自電容 M352721 具體實施例中,可c 作一驅動與感測線。 可以將一至每一電極之單一
導電迹線兼用 ,可以測量介於—第一電極與一第二雷
在互電谷系統中 同側。由於该等驅動與感測線係分離,因此在每一,,交 又點”存在一電容耦合節點。 該等驅動與感測線之配置方式可以改變。例如,在一笛 卡爾座標系統(如所示)中,該等驅動線可以係形成為水平 列,而該等感測線可以係形成為垂直行(或反之亦然),從 而形成可視為具有不同\與y座標之複數個節點。或者,在 _ 一極座標系統中,該等感測線可以係複數個同心圓,而該 等驅動線係徑向延伸的線或反之亦然),從而形成可視為 具有不同的r與角座標之複數個節點。在任一情況下,驅 動線10 5 a可以係連接至驅動電路1 〇 4 ’而感測線1 〇 5 b可以 係連接至感測電路1 〇3。 在操作期間,向每一驅動線l〇5a施加一駆動信號(例 如,一週期性電壓)。在受驅動時,施壓於驅動線丨〇5&上 的電荷可以透過節點102電容耦合至交叉的感測線1〇5b。 此可以在感測線1 〇5b中產生一可偵測、可測量的電流及/ -10- M352721 p7*8* 1 、… 丨“日1¾ 或電壓。該驅動信號與出現於感測線105b上的信號之間的 關係與耦合該等驅動與感測線的電容成函數關係,該電容 可月b又與節點1 〇2近接之一物件的影響,如上文所提到。 (或多個)電容感測電路103可以感測感測線丨〇%並可以決 定在每一節點處的電容,下面將更詳細地說明。 如上所述,可以一次一線的方式來驅動傳統驅動線 105a,而將其他驅動線接地。針對每一驅動線重複此 程序直至已驅動所有該等驅動線,而由所感測的結果構建 觸控衫像(基於電容)。一旦已驅動所有該等線i〇5a,該 序列便會重複以構建一系列觸控影像。但是,在本創作之 二具體實施例中,可以同時或接近同時驅動多個驅動 線例如,如下所述。本文所使用的"同時,,涵蓋精確同時 以及接近同時之事件。例如’同時事件可開始於大致相同 的時間,結束於大致相同的時間,及/或發生於至少部分 重疊的時間週期。 • 圖3解說對應於上述配置之互電容電路3〇〇之一簡化示意 圖。互電容電路300可包括驅動線1〇5a與感測線1〇讣,該 等驅動與感測線係空間分離而由此形成電容耦合節點 102驅動線105a可以係電(例如,導電)耦合至以電壓源 3〇1來表示之驅動電路104。感測線1〇5b可以係電耦合至電 容感測電路1〇3。在某些情況下,驅動線1〇&與感測線 105b皆可以包括某寄生電容go]。 如上文所提到,在與驅動線1〇5a及感測線⑺北的交叉點 近接之一導電物件不存在之情況下,節點1〇2處的電容耦 * II - M352721 r* 月曰 修正 使用者的 合保持相當恆定。但是,若一導電物件(例 手指、尖筆等)變成與節點102近接,則該電容耦合(即,本 端系統之電容)改變。電容耦合之變化導致由感測線i〇5b 所載送的電流(及/或電壓)改變。電容感測電路1〇3可以標 注節點10 2之電容變化及位置並將此資訊以某一形式報告 給處理器106(.圖1)。 參考圖1,感測電路103可獲取來自觸控表面1〇1之資料 並將所獲取之資料提供給處理器1〇6。在一些具體實施例 中,感測電路103可經組態用以向處理器ι〇6傳送原始資料 (例如’對應於每一感測點1〇2的電容值之一陣列)。在其他 具體實施例中,感測電路1〇3可經組態用以由其自身來處 理该原始資料並將經處理的觸控資料傳遞給處理器丨〇6。 在任一情況下,該處理器可以接著使用其所接收的資料來 控制電腦系統107之操作及/或執行於其上的一或多個應用 程式。在上文所參考的應用中說明沿此等線的各種實施方 案’而且此等實施方案包括具有觸控墊與觸控螢幕之各種 電腦系統。 在一些具體實施例中’感測電路1 〇3可以包括一或多個 微控制器,該等微控制器之每一微控制器可監視一或多個 感測點1 02。該等微控制器可以係特定應用積體電路 (ASIC) ’其結合韌體工作以監視來自觸控敏感表面1〇1之 信號、處理受監視的信號並將此資訊報告給處理器丨〇6。 該等微控制器還可以係數位信號處理器(DSP)。在一些具 體實施例中,感測電路103可包括測量在每一感測線丨05b -12- M352721 Γ:8;1 JtiEj mj 中的電容並向處理器106或電腦系統l〇7中之一主機控制器 (未顯示)報告測量值之一或多個感測器1C。可以使用任何 數目之感測器1C。例如,可以將一感測器ic用於所有線, 或者可以將多個感測器1C用於一單一線或一群組的線。 圖4解說用以於操作一多觸控感測配置(如上述配置)之 一高階程序400。該程序可以開始於步驟4〇1,__ . 102。在步驟401之後,該程序流程可進行到步 數個感測點
驟402,其中讀取來自感測點1〇2之輸出。例如’可以獲得 針對每一感測點102之一電容值。在步驟4〇2後,該程序可 進行到步驟403,其中可以產生在一時刻的觸控之一影像 或其他形式的資料(一或多個信號)而然後加以分析以決定 物件對該觸控感測器之觸控或近接可位於何處。在步驟 4〇3後,該程序可進行到步驟4〇4,其中可以將當前影像或 L號與-或多個過去的影像或信號相比較以決定針對每一 物件在形狀、尺寸、位置、方向、速度、加速度、壓力等 或多個方面之變化。隨後可以使用此資訊(在步驟 :5、中)在電腦系統107中執行-動作,其範圍從移動一指 才示或游標至複雜的基於姿勢之互動。 如上文所提到’可以藉由同時驅動多列來實現多觸控敏 二置之增強的操作。圖5解說可以結合採用多列刺激之 一乾例性多觸控感測裝置5〇〇, 示配置⑻之參考數字。切有由般對應於圖1所 5〇1^* +該給疋範例中,觸控敏感表面 π〗具有十六個驅動列505a 列。嗲黧紅 仁可以使用任何數目之驅動 歹J該專驅動列可以係分成^丨1、 成(例如)四個群組,例如,群組 •13- M3 52721
1、群組2、群組3及群組4,每一群組包括四個驅動列 505a。還可以採用其他的群組數目及每群組之列數目。 在各種參考文獻中說明多觸控感測器陣列之掃描,該等 參考文獻包括美國專利申請案第,其係以引 用的方式併入於此。可以藉由參考圖7來簡要概述該程 序。一般地,依序向驅動列5〇5a施加一週期性波形(例 如,一系列方波脈衝)。例如,可以將一第一群組脈衝7〇 i 施加於列A,接下來將一第二群組脈衝7〇2施加於列B,接 下來將一第二群組脈衝703施加於列c,接下來將一第四群 組脈衝704施加於列D。此等週期性波形係電容性耦合進感 測線505b,此一般在每一感測線上產生所感測波形7〇5。 可以輸入在一預定時間週期積分所得之所感測波形7〇5, 以測里在每一谛點502處驅動線5〇5a與感測線5〇汕之間的 電谷耦合。其他處理(例如過濾、解調變等)亦可以發生。 在所感測波形705中,從^至ti之時間週期對應於列A之 刺激。藉由在此時間週期求所感測波形之積分而產生一數 值XI此數值XI可對應於在列A與所感測行的交叉點處之 一節點的電容。同揭,处t s + ^ + 像從h至t2之時間週期對應於列B,從 t2至t3之時間週期對應於丨 於列C,而從t3至t4之時間週期對應 於列D。在此等時間调如 | 1週,月之母一時間週期求所感測波形之 積分,可以產生對應於右吋笙 、在δ亥等列B、C及D與所感測行的交 叉點處之節點之電容的數值X2、X3及χ4。 圖8解說一多線刺激配, ' 八中可以同時刺激兩個線。 明確言之,可以藉由同_ ,—、枝、匕 夺(或接近同時)刺激列A與列B,其 -14- M3 52721 波形為801與802。可以看出 調整波形801之相位。因此, 年
(例如)在該第四脈衝後可以 波形801與802之其餘脈衝可 以係⑽。異相。同樣,可以同時(或接近同時)刺激列⑶ 列D,其波形為_與807。同樣,(例如)在該第四脈衝後 可以調整波形806之相位。因此,波形8〇6與8〇7之其餘脈 衝可以係180。異相。參考上述+鱼玆啼,—曰, 1工迷十興-捋唬可以容易地理解該 等波形之間的相位關係。
與上文參考圖7所述之範例不同,該等時間週期“至^、 ^至^、^至及至%可能不再唯一地對應於列入至£^同 樣,由在此等時間週期求所感測波形(未顯示)之積分而產 生之測量值XI、X2、幻及乂4不再唯一對應於在一特定列 與所感測行的交又點處之一節點之電容。在圖8之範例 中,時間週期t〇至丨丨及^至!2及其對應的測量值Χ1&Χ2 一起 對應於列Α與列Β。同樣,時間週期^至^私至^連同其對 應的測量值X3及X4—起對應於列c與列但是,由於該 等刺激波形801與8〇2之間的相位差,因此可以將僅刺激列 A與僅刺激列B之效果互相隔離。同樣,由於該等刺激波 形806與807之間的相位差,因此可以將僅刺激列c與僅刺 激列D之效果互相隔離。 明確言之,由於刺激波形8〇1與8〇2在時間週期“至^係 同相而在時間週期tl至係異相,因此積分結果χι加上積 分結果X2(即,χ1+χ2)可以產生對應於在列a與所感測線 的交又點處之一節點之電容的一值,即僅列A之刺激的效 果。同樣,該積分結果XI減去該積分結果χ2(即,χι_χ2) •15- M3 52721 μν. a. 年月曰 ‘正 可產生對應於在列B與所感測線的交叉點處之一節點之電 容的一值’即僅列B之刺激的效果。 此同樣適用於列C與D。由於刺激波形806與8〇7在時間 週期h至係同相而在時間週期、至“係異相,因此積分結 果X3加上積分結果Χ4(即,χ3+χ4)可以產生對應於列c與 所感測線的交又點處之一節點的電容(即,僅列c之刺激的 效果)之一值。同樣,該整合結果χ3減去該解調變結果 Χ4(即,Χ3-Χ4))可產生對應於在列D與所感測線的交叉點 處之一節點之電容的一值,即僅列D之刺激的效果。 圖9解說其中同時刺激四個線之一範例性多線刺激配 置。在從^至^之一第一週期期間,向列人至£)施加的週期 性波形901至904係同相。在時間tl(例如,在該第四脈衝 後),可以將波形901及902之相位調整成使得波形9〇1及 902係相對於波形903及904而1 80。異相。同樣,在時間 例如’在接下來四個脈衝後),調整波形9〇丨及9〇3之相 位。此可導致波形901及904係相對於波形902及903而180。 異相。最後’在時間h(例如,在四個以上脈衝後),可以 再次調整波形901及902之相位。此可導致波形9〇1及903係 相對於波形902及904而180。異相。參考圖中的+與_符號可 以理解各種波形之間的相位關係。 如前述範例中一樣’波形90 1至904之間的相位關係允許 將每一個別列上的刺激效果作為測量的積分結果之數學組 合而隔離。明確言之’可以藉由表達式χ1+Χ2+χ3+Χ4來 決定列Α之刺激的效果。可以藉由加總χ1+χ2_χ3_χ4來決 16
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97. STT 年月 定列B之刺激的效果。可以藉由X1-X2-X3+X4來決定列c 之刺激的效果。可以藉由X1-X2+X3-X4來決定列D之刺激 的效果。 可以參考圖6之流程圖來進一步理解具有多列刺激之多
觸控感測配置500之操作的程序600。首先,可以獲得針對 一列群組之直流成分60 1。在圖8之範例中,可以藉由在時 間週期tG至t]求所感測波形之積分來獲得包括列a與列b的 列群組之直流成分。此直流成分可(稍微粗略地)指示在對 應於觸控表面501之一特定區域的一給定群組(例如列a盘 B)内是否存在任何觸控。若在決策步驟6〇2中決定在—給 定群組/區域内無觸控,則可以採取類似方式掃描下一群 組(例如,列C與D)。此可以係藉由(例如)實施計數器6〇3 來實施。若在決策步驟602中,決定在一給定群組/區域内 有觸控,如由該群組的直流成分所示,則在步驟6〇4中執
行該群組之-精細掃描。可以組合該精細掃描之結果以掏 取對應於每一列之信號,如上所述。 組’該程序便重複。 旦已掃描所有群 回過來參考圖5及6 ’可以依據前述各段中說明的原理來 掃描每—料組。—多觸㈣測配置可包括任何數目的列 與任何數目的群組。在—些具體實施财,-多觸控感測 配置可以制在-單—群組上的多線刺激,即可以同 接近同時難該裝置之所有線。此外,料按列 說 明,但可以將該等驅動與感測線配置於任何幾說 如上所述之多線刺激可以提供若干優點。例如: M3 52721 刺激多列時 ¥ pT. 8. 年月 明確言之,多列刺激 可以減小該刺激電壓。 之添加效果可以使得針對一較低的”每列”刺激電壓而產生 相同的所感測波形振幅。例如,使用一丨8 Vp〆伏特峰值 至峰值)刺激電壓之—單—線掃描配置可以制—9 Vpp刺 激電壓而同時刺激兩個線或者採用—4.5 Vpp刺激電壓而 同時刺激四個線,等等,從而獲得類似的所感測波形振 幅。 減小該刺激電壓可以允許直接從一驅動@晶片供應驅動 號而無需同電壓升壓器。所減小的電壓亦可輔助避免 邊緣電場與電晶體崩潰問題。所減小的電壓亦可產生減小 的功率消耗。由於功率按電壓的平方而縮放,因此藉由將 電壓減小一四倍因數(針對四列同時刺激)而將每列的功率 減小一16倍因數。但是’由於有四列受驅動因此實際的 功率節省可能僅係一4倍因數。但是,如上所述,當在該 區域之直流掃描期間未偵測到觸控時,還可以藉由不進 行一精細掃描來節省額外的功率。 上述多列刺激技術之一變化方案可稱為差動多列刺激。 可參考下表來了解差動多列刺激’其顯示與針對一差動多 列刺激範例(差動多列刺激)的刺激波形之極性相比,針對 上述圖9之多列刺激範例(多列刺激)的刺激波形之極性。差 動多列刺激一般可對應於上述多列刺激範例,不同之處係 可如下所不而重新配置該等刺激波形之極性。 -18- M352721 όΊ. 8. i 年月
-_—_多列 刺激 列 XI X? X3 X4 列總和 A + + + + +4 B + -- —+ 一 0 C + + 0 D ·- II- + ~~~~ — + __ 0 _行總和 +4 -- 1 “ 0 0 0 刺激電壓相位比較 列 XI X7 X3 X4 列總和 A — + + 0 B + + . 0 C + . + 0 D - + + 0 行總和 0 0 0 0 從表中可看出’在該多列刺激範例中,橫跨列Α而施加 的淨極性可具有四倍於該刺激波形之振幅之一直流分量。 同樣’該第一時間週期(期間可測量值又”亦可以具有四倍 於該刺激波形之振幅之一淨直流分量。在該差動多列刺激 範例中’可以將該等極性重新配置成使得無任何列或時間 週期具有一直流分量。缺少一直流分量可能產生若干優 點’包括允許該電荷感測電路在零偏移、自動基線移除、 固有的質心計算及增加的信號對雜訊比之條件下進行操 作。在一些具體實施例中’可能需要同時刺激該感測器之 所有列(即,僅具有一列群組),因為不同群組之間的直流 偏移之差可能因該刺激中缺少直流成分而損失。 多列刺激概念之其他變化包括基於相位或頻率的多列刺 數。在前述範例中,可以藉由具有極性(相位)差的波形來 刺激不同列,從而可以在聚集的感測波形中隔離一給定列 之效果。允許此類隔離之另一方式(圖11所示)係藉由具有 ~不同頻率之刺激波形來刺激一群組之每一列。接著,一 或多個解調變電路可以在該感測波形中分離此等頻率使得 -19· M352721
補充I 可以隔離每—受刺激線所起的作用。在許多具體id 中,可能已經存在解調變電路用於雜訊過濾。 可以參考圖12來理解依據本文所述原理之其他用於刺激 波形的可行方案之範例。時序信號12〇1可定義—刺激時間 ^ 每、線可具有一對應的時序信$。在該刺激時間窗 口期間’例如當信號1201係高時,可以向該(或該等)對應 正弦波、一指數衰減正弦波、一脈衝正弦波 的線施加一刺激波形。此刺激波形可採取各種形式,包括 一方波、 等
本文所使用的同時刺激表示在同一時間週期(例如窗 口,其可包括任何形狀及採用任何組合的一或多個脈衝) 期間向至少兩個線施加至少—刺激。換言t,同時刺激包 括具有時間上至少部分重疊的刺激窗口之至少兩個線。例 如三在圖UB中,針對列a之—刺激窗口(由時序信號mia 所定義)可同時開始,延伸相同的持續時間,而終止於與 針對列B之一刺激窗口(由時序信號1201b所定義)相同的時 間。或者,如圖12C所示,針對列A(由時序信號12〇la所定 義)與列B(由時序信號12〇lb所定義)之刺激窗口可以開始與 結束於不同時間,但是具有至少某一重疊部分。圖12靖 示之另一替代例係使得針對列A(由時序信號12〇la所定義) 與列B(由時序信號12〇lb所定義)之刺激窗口可同時開始但 終止於不同時間。_所示之另,戈方案係使得列 A(由時序信號1201a所定義)與列B(由時序信號i2〇ib所定 義)之刺激窗口可開始於不同時間但同時終止。還可以將 -20·
M352721 此等各種配置延伸用於多於兩個之一數目的列,而只要在 至少某些列之間存在一定的刺激重疊便具有完全的靈活 性。 本文所述原理可用於將輸入裝置設計用於各種電子裝置 及電腦系統。此等電子裝置及電腦系統可以係圖丨〇所示各 種類型之任一類型,包括桌上型電腦1001、筆記型電腦 1002、平板型電腦1003、手持式電腦1004、個人數位助理 1005、媒體播放器1006、行動電話1〇〇7及類似物。此外, 該等電子裝置及電腦系統可以係此等類型之組合,例如作 為一個人數位助理、媒體播放器及行動電話之一組合的一 裝置。 主肝卜列申請專利 置換、組合及等效 le*圍解釋為包括前述方案之所有變更 還可以對上述具體實施例進行其他變更、置換及組合。 例如,可以依據紅外線/光學感測配置來設計多觸控及近 接系統,該等紅外線/光學感測配置依賴來自手的部分或 其他觸控物件之週期性波形刺激及反射來偵測觸控及/或 懸浮事件。本文所述之原理儘管係參考電容系統來說明, 但同樣適用於其中由從週期性刺激波形擷取的資訊來決定 觸控或近接感測之任何系統。因此,希望將下列申請專利 【圖式簡單說明】 藉由參考以上結合附圖所作的說明 作之上述及其他態樣,其中: 圖1解說依據本創作之一具 可更好地理解本創 一具體實施例用作針對— 電腦系 -21 - M352721 統之一輸人裝置的-多觸控感測裝置 〇· 月曰畛 圖2解說依據本創作之一具體實施例對應於與一夕 r6l _1> 、夕觸控 表面的複數個感測點近接之—物件的複數個接 圖3解說可用於本創作之-具體實施例之互電= 路之—簡化示意圖。 奋感 圖4解忒依據本創作之一具體實施例用以操 感測裝置之一程序。 夕觸控 補區。 測電 置 圖5解說依據本創作之—具體實施例之—多觸控感測敦 圖6解說依據本創作之—具體實施例用以執行 之一程序。 多線刺敎 圖7解說依據先前技術之—單—線刺激配置。 圖8解說依據本創作之—具體實施例之-兩線同時刺激 配置。 圖9解說依據本創作之一 1牌每t J 〈 具體實施例之一四線 配置。 同時刺激 圖1〇解說可依據本創作之-具體實施例而使用的各種電 子裝置及電腦系統形式因素。 圖11解說依據本創作之—且俨 ^ ^ /、體實施例之一基於頻率的四 線同時刺激配置。 圖12A至12E—般解說依據太名 曰胁途:t 爆本創作之一具體實施例針對 刺激窗口之各種替代例。【主要元件符號說明】 100 多觸控感測配置 -22- M352721
101 觸控敏感表面/多觸控感測器 102 感測點、座標或節點 103 電容感測電路 104 驅動電路 105a 導電迹線/驅動線 105b 導電迹線/感測線 106 處理器 107 電腦系統 201 接觸修補區 202 節點 300 互電容電路 301 電壓源 302 寄生電容 501 觸控敏感表面 502 節點 504 驅動電路 505a 驅動列/驅動線 505b 感測線 701 第一群組脈衝 702 第二群組脈衝 703 第三群組脈衝 704 第四群組脈衝 705 所感測波形 801 波形 M352721
802 波形 806 波形 807 波形 901 週期性波形 902 週期性波形 903 週期性波形 904 週期性波形 1001 桌上型電腦 1002 筆記型電腦 1003 平板型電腦 1004 手持式電腦 1005 個人數位助理 1006 媒體播放器 1007 行動電話 1201 時序信號 1201a 時序信號 1201b 時序信號 -24-
Claims (1)
- Μ3亨!24號專利申請案 文申請專利範圍替換本(97年I2月) 九、申請專利範圍: 一種觸控感測裝置,其包含: 觸控敏感表面,其具有複數個感測點,每一感測點 係與複數個驅動線之一驅動線以及複數個感測線之一感 測線相關聯; 驅動電路,其經組態用以同時向該複數個驅動線之兩 個或兩個以上驅動線施加驅動信號,其中向該兩個或兩 • 個u上驅動線之每一線施加一唯一驅動信號; 感測電路,其經組態用以: 俄測在至少一感測線中之一感測信號,藉由一或多 個物件對與該感測線相關聯的一或多個感測點之觸控或 近接而將該感測信號與該等驅動信號相關;以及 從該感湏“S號導出針對該一或多個感測點之觸 訊。 '::月:項1之觸控感測裝置,其中該感測電路藉由從該 :測仏號導出複數個值並從該複數個值之一數學組合導 出觸控資訊來從該感測作 3. ^ 珑導出觸控資訊。 如請求項丨之觸控感測裝 ,^ ^ ^ 私, 衣置,其中該感測電路藉由在複 數個時間週期求該感測作 & 〗唬之積分而從該感測信號導出 複數個值。 4. 如請求項1之觸控感測裝署^ ^ _ ^ 裝置’其中該觸控敏感表面係基 於互電容。 如請求項4之觸控感測裝 ^ ^ ώ 表置’其中該觸控資訊包含在每 —感測點處的觸控值之—陣列。 •25, 5. M352721 6.如請求項5之觸控感夠裝 137.12. 0 9, 闕補充| ——一rrr __ y 置,其中該等觸控值對應於在 年月曰 每一感測點處之一電容測量。 =叫求項1之觸控感蜊裝置,其中向每一驅動線施加之 該等驅動信號因-預定相位關係而係唯一。 8.如叫求項7之觸控感剛|置其中該預定相位關係係經 選擇以消除該感測信號之一直流分量。 9·如请求項1之觸控感測裴置,其中向每一驅動線施加之10. 該等驅動信號因一預定頻率關係而係唯一。 如請求項9之觸控感測裳置,其中向每一驅動線施加之 該驅動信號具有一唯一頻率。 U·如請求項1之觸控感測裳置,纟中該觸控敏感表面係一 觸控螢幕之部分。 12.如請求項1之觸控感測裝置 驅動線。 其中該至少一感測線係一 13· -種電子裝置’其具有如請求項卜2、3、7或9中任一 項之觸控感測裝置作為一輸入裝置。 14.如請求項13之電子裝置,其中該電子裝置係從由一桌上 型電腦、-平板型電腦及一筆記型電腦組成的群組中選 擇。 15.如請求項13之電子裝置, 電腦、一個人數位助理、 的至少一者。 其中該電子裝置包含一手持式 一媒體播放器及一行動電話中 16· —種行動電話,其具有如請求項i、2、3、7或9中任 項之觸控感測裝置作為一輸入裝置。 -26· °%ΙΒ] M3 52721 ΡΟδΤ 年月 1 7· —種觸控感測模組,其包含: 一 一觸控敏感表面,其具有複數個導電線; 驅動電路,其經組態用以同時向該複數個線之兩個或 兩個以上線施加至少一驅動信號; 感測電路,其經組態用以: 摘測在該複數個線的至少一線中之至少一感測信 號,其中該感測信號係與在該複數個線附近的至少一物 | 件之一接觸或近接事件相關;以及 從該感測信號導出觸控資訊。 1 8 ·如請求項17之觸控感測模組,其中該至少一驅動信號包 含針對每一受刺激線之一唯一的驅動信號。 19.如請求項1 8之觸控感測模組,其中該等驅動信號因一預 定相位關係而係唯一。 2〇.如請求項19之觸控感測模組,其中該預定相位關係係經 選擇以消除該感測信號之一直流分量。 -27- M352721 97. 8. 1 年月 七、指定代表圖: (一) 本案指定代表圖為:第(1 )圖。 (二) 本代表圖之元件符號簡單說明: 100 多觸控感測配置 101 觸控敏感表面/多觸控感測器 102 感測點、座標或節點 103 電容感測電路 104 驅動電路105a 導電迹線/驅動線 105b 導電迹線/感測線 106 處理器 107 電腦系統
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- 2008-01-03 TW TW106106166A patent/TWI611333B/zh active
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TWI406034B (zh) * | 2009-05-26 | 2013-08-21 | Japan Display West Inc | 觸控感測器,顯示器件,以及電子裝置 |
TWI405113B (zh) * | 2009-10-09 | 2013-08-11 | Egalax Empia Technology Inc | 分析位置的方法與裝置 |
TWI405107B (zh) * | 2009-10-09 | 2013-08-11 | Egalax Empia Technology Inc | 分析位置的方法與裝置 |
TWI410849B (zh) * | 2009-10-19 | 2013-10-01 | Orise Technology Co Ltd | 電容式觸控面板的感測電路 |
TWI512577B (zh) * | 2010-04-30 | 2015-12-11 | Microchip Tech Inc | 使用自電容及互電容兩者之電容觸控系統 |
TWI569195B (zh) * | 2011-10-14 | 2017-02-01 | 禾瑞亞科技股份有限公司 | 觸控通信裝置與其控制器 |
TWI506517B (zh) * | 2013-06-14 | 2015-11-01 | Interface Optoelectronic Shenzhen Co Ltd | 觸控面板與觸控顯示裝置 |
TWI623756B (zh) * | 2013-08-16 | 2018-05-11 | 蘋果公司 | 用於使用者接地校正之觸控面板電極結構 |
US9535551B2 (en) | 2014-04-03 | 2017-01-03 | Apex Material Technology Corp. | Mutual capacitance touch sensitive sensing apparatus and system and method thereof |
US10936120B2 (en) | 2014-05-22 | 2021-03-02 | Apple Inc. | Panel bootstraping architectures for in-cell self-capacitance |
US10705658B2 (en) | 2014-09-22 | 2020-07-07 | Apple Inc. | Ungrounded user signal compensation for pixelated self-capacitance touch sensor panel |
US11625124B2 (en) | 2014-09-22 | 2023-04-11 | Apple Inc. | Ungrounded user signal compensation for pixelated self-capacitance touch sensor panel |
TWI604356B (zh) * | 2016-09-09 | 2017-11-01 | 意象無限股份有限公司 | 觸控系統及其觸控偵測方法 |
US10642418B2 (en) | 2017-04-20 | 2020-05-05 | Apple Inc. | Finger tracking in wet environment |
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