1. Field of the Invention
The invention relates to a testing system, and more particularly to a testing system comprising an image sensor.
2. Description of the Related Art
With integrated circuit (IC) technology development, size of electronic products is reduced such that portability of electronic products is greatly increased. For detecting images, image sensors are built-in a majority of electronic products. Generally, image sensors comprise charge coupled devices (CCDs) and complementary metal oxide semiconductor (CMOS) image sensors.
One CCD comprises a plurality of photo sensors for detecting light and transforming the light into electronic signals. A conversion chip is utilized to transform the electronic signals into digital signals. Each photo sensor is called a pixel. A pixel is composed of a semiconductor material. The sensor ability of the semiconductor material is high. A CMOS image sensor transforms light into energy. An analog to digital converter (ADC) is utilized for transforming analog signals into digital signals.
A CMOS image sensor is manufactured by CMOS procedures. CMOS manufacturing procedures are P-channel metal-oxide-semiconductor field effect transistor (PMOSFET) and N-channel MOSFET (NMOSFET). Since characteristics of PMOSFET and NMOSFET are complementary, PMOSFET and NMOSFET are called CMOS. Only when PMOSFET or NMOSFET is operational, the CMOS consumes power, thus, CMOS image sensors manufactured by CMOS procedures conserve power and does not easily heat.
When CCD or CMOS is packaged, testing steps are required to test the CCD or CMOS. A tester discovers abnormal image sensors and then packages normal image sensors. If the tester does not accurately discover the abnormal image sensors, failure rate of image sensors is high.
Testing systems are provided. An exemplary embodiment of a testing system comprises an image sensor, a transformer, and a display device. The image sensor generates an image signal according to a light source. The transformer transforms the image signal into a processing signal. The display device displays a frame according to the processing signal.
Testing methods are provided. An exemplary embodiment of a testing method for a testing system is described in the following. The testing system comprises an image sensor, a transformer, and a display device. A light source is provided to the image sensor. An image signal generated by the image sensor is received. The image signal transforms into a processing signal. A frame is displayed according to the processing signal.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention can be more fully understood by referring to the following detailed description and examples with references made to the accompanying drawings, wherein:
The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
Image sensor 110 is a CCD or a CMOS image sensor. The CCD or the CMOS image sensor detects light source SL to generate image signal SI. The format of image signal SI is RGB format. Transformer 120 transforms the image signal comprising the RGB format into processing signal SP. The format of processing signal SP is a YUV format. Display device 130 displays a frame corresponding to the processing signal SP comprising a YUV format. In this embodiment, transformer 120 is a digital signal processor (DSP) for transforming the format of image signal SI from the RGB format into the YUV format. The principle of transforming the RGB format into the YUV format is well known to those skilled in the field, thus, description hereof is omitted.
A tester determines whether pixels of image sensor 110 are normal according to the frame. If a pixel of image sensor 110 is normal, the pixel detects light and provides the normal detecting result such that display device 130 displays the normal frame. When one pixel of image sensor 110 is abnormal, the abnormal pixel provides the error detecting result. Thus, a dark point or a shadow occurs in the frame. The tester determines the location of the abnormal pixel according to the location of the dark point or the shadow. The display device 130 displays the frame according to processing signal SP. Since the YUV format emphasizes the image brightness, if the pixel of image sensor 110 is abnormal, the dark point or the shadow generated is obvious. Thus, the tester immediately determines the location of the abnormal pixel according to the dark point or the shadow.
Oppositely, if display device 130 displays the frame according to image signal SI. Since the format of image signal SI is the RGB format, the abnormal event is non-obvious, thus, the tester hardly ever discovers abnormal pixels. However, if the format of processing signal SP is the YUV format, the tester will quickly be able to discover the abnormal pixel when display device 130 displays the frame according to processing signal SP.
In this embodiment, since processing signal SP is a low voltage differential signaling (LVDS), decoder 230 is utilized to execute a decoding action, thus, display device 240 immediately displays the frame. Since the format of processing signal SP is the YUV format, the format of decoded signal SPD is also the YUV format. Thus, display device 240 is in accordance with the YUV format to display the frame. Additionally, processing signal SP is processed by decoder 230. When image sensor 210 is packaged and in a testing stage, the testing step relating to LVDS are omitted. In some embodiments, transformer 220 and decoder 230 are disposed on the same printed circuit board (PCB).
The image signal is transformed into a processing signal (step S330). Since the format of image signal SI is the RGB format, the format of image signal SI is transformed from the RGB format into the YUV format. Thus, processing signal SP comprises the YUV format. A frame is displayed according to the processing signal (step S340). When display device 130 displays the frame according to processing signal SP, a tester easily determines the location of abnormal pixels, thus, testing time is reduced.
The image signal is transformed into a processing signal (step S430). The format of image signal SI is the RGB format. In this embodiment, the format of image signal SI is transformed from the RGB format to the YUV format such that processing signal SP is generated. The processing signal is decoded (step S440). When processing signal SP is LVDS, a decoding step is required for immediately processing or receiving processing signal SP.
A frame is displayed according to the processing signal (step S440). In this embodiment, display device 240 displays the frame corresponding to the decoded signal SPD. Since decoder 230 generates decoded signal SPD according to processing signal SP, display device 240 indirectly bases frame display on processing signal SP. The format of processing signal SP is the YUV format, as such the format of decoded signal SPD is the YUV format. Thus, display device 240 displays the frame according to the YUV format such that the tester easily determines the location of abnormal pixels according to the frame.
While the invention has been described by way of example and in terms of the preferred embodiments, it is to be understood that the invention is not limited to the disclosed embodiments. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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096114748 | Apr 2007 | TW | national |