參數資料
型號: AD7147ACPZ-1REEL
廠商: Analog Devices Inc
文件頁數: 21/73頁
文件大?。?/td> 0K
描述: IC CAP-TO-DGTL CONV PROG 24LFCSP
標準包裝: 5,000
系列: CapTouch™
類型: 電容數字轉換器
分辨率(位): 16 b
采樣率(每秒): 250k
數據接口: I²C,串行
電壓電源: 單電源
電源電壓: 2.6 V ~ 3.6 V
工作溫度: -40°C ~ 85°C
安裝類型: 表面貼裝
封裝/外殼: 24-VFQFN 裸露焊盤,CSP
供應商設備封裝: 24-LFCSP-VQ(4x4)
包裝: 帶卷 (TR)
配用: EVAL-AD7147EBZ-ND - BOARD EVAL FOR AD7147ACPZ
EVAL-AD7147-1EBZ-ND - BOARD EVAL FOR AD7147ACPZ-1
Data Sheet
AD7147
Rev. D | Page 27 of 72
ADAPTIVE THRESHOLD AND SENSITIVITY
The AD7147 provides an on-chip, self-adjusting adaptive
threshold and sensitivity algorithm. This algorithm continu-
ously monitors the output levels of each sensor and automatically
rescales the threshold levels in proportion to the sensor area
covered by the user. As a result, the AD7147 maintains optimal
threshold and sensitivity levels for all users regardless of their
finger sizes.
The threshold level is always referenced from the ambient level
and is defined as the CDC converter output level that must be
exceeded before a valid sensor contact can occur. The sensitivity
level is defined as how sensitive the sensor must be before a
valid contact can be registered.
Figure 38 provides an example of how the adaptive threshold
and sensitivity algorithm works. The positive and negative
sensor threshold levels are calculated as a percentage of the
STAGEx_OFFSET_HIGH and STAGEx_OFFSET_LOW
values and are based on the threshold sensitivity settings and
the ambient value. After the AD7147 is configured, initial
estimates are supplied for both STAGEx_OFFSET_HIGH
and STAGEx_OFFSET_LOW, and then the calibration engine
automatically adjusts the STAGEx_HIGH_THRESHOLD and
STAGEx_LOW_THRESHOLD values for sensor response.
The AD7147 tracks the average maximum and minimum values
measured from each sensor. These values provide an indication
of how the user is interacting with the sensor. A large finger
results in a large average maximum or minimum value, whereas
a small finger results in smaller values. When the average
maximum or minimum value changes, the threshold levels are
rescaled to ensure that the threshold levels are appropriate for
the current user. Figure 39 shows how the minimum and
maximum sensor responses are tracked by the on-chip logic.
Reference A in Figure 38 shows a less sensitive threshold level
for a user with small fingers and demonstrates the disadvantages
of a fixed threshold level.
By enabling the adaptive threshold and sensitivity algorithm, the
positive and negative threshold levels are determined by the
POS_THRESHOLD_SENSITIVITY and NEG_THRESHOLD_
SENSITIVITY bit values and by the most recent average maxi-
mum sensor output value. These bits can be used to select 16
different positive and negative sensitivity levels ranging between
25% and 95.32% of the most recent average maximum output
level referenced from the ambient value. The smaller the sensitivity
percentage setting, the easier it is to trigger a sensor activation.
Reference B shows that the positive adaptive threshold level is
set at almost mid-sensitivity with a 62.51% threshold level by
setting POS_THRESHOLD_ SENSITIVITY = 1000. Figure 38
also provides a similar example for the negative threshold level,
with NEG_THRESHOLD_SENSITIVITY = 0011.
AMBIENT LEVEL
CDC
O
UT
P
UT
CO
DE
S
AVERAGE MAXIMUM VALUE
STAGEx_OFFSET_HIGH
25%
95.32%
62.51% =
POS_
THRESHOLD
_SENSITIVITY
25%
62.51% =
POS_
THRESHOLD
_SENSITIVITY
95.32%
NEG_THRESHOLD_SENSITIVITY = 39.08%
25%
95.32%
25%
95.32%
SENSOR CONTACTED
BY SMALL FINGER
AVERAGE MAXIMUM VALUE
STAGEx_OFFSET_LOW
NEG_THRESHOLD_SENSITIVITY = 39.08%
SENSOR CONTACTED
BY LARGE FINGER
STAGEx_OFFSET_HIGH
IS UPDATED
STAGEx_OFFSET_HIGH
IS UPDATED
STAGEx_OFFSET_LOW
IS UPDATED
STAGEx_OFFSET_LOW
IS UPDATED
A
B
0
66
63
-03
5
Figure 38. Example of Threshold Sensitivity (POS_THRESHOLD_SENSITIVITY = 1000, NEG_THRESHOLD_SENSITIVITY = 0011)
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