1. Field of the Invention
The present invention relates to a method and apparatus for detecting abnormal characteristic values of a plurality of products or lots sequentially manufactured in the same manufacturing line.
2. Description of the Related Art
In a first prior art abnormal characteristic value detecting method (see: JP-2001-67109 A), measured characteristic values depending upon lot numbers manufactured in the same manufacturing line have to fall within an allowable region. That is, when a measured characteristic value is outside the allowable region, a respective lot of this measured characteristic value is deemed to be defective, so that the respective lot is scrapped. Also, in order to decrease the number of scrapped lots, measured characteristic values are controlled to fall within a control region narrower than the allowable region. That is, when a measured characteristic value is within the allowable region but outside the control region, i.e., within an alarm region, an alarm signal is generated to carry out a countermeasure operation. Such a measured characteristic value is called an abnormal characteristic value. This will be explained later in detail.
In the above-described first prior art abnormal characteristic value detecting method, however, even if a successively-alternate increase/decrease tendency is generated in the measured characteristic values, no alarm signal is generated so that a measured characteristic value would be outside the allowable region due to the delay of an advance countermeasure operation.
In a second prior art abnormal characteristic value detecting method, if a certain successively-alternate increase/decrease tendency is generated even within the control region, an alarm signal is generated to prevent other measured characteristic values from being outside the allowable region. The last measured characteristic value of the tendency is called an abnormal characteristic value. This also will be explained later in detail.
Note that a “successively-alternate increase/decrease tendency” is defined such that, under the condition that first, second, third, fourth, . . . characteristic values are sequentially measured, if the second characteristic value is increased as compared with the first characteristic value, the third characteristic value is decreased as compared with the second characteristic value, the fourth characteristic value is increased as compared with the third characteristic value, and so on. Such a successively-alternate increase/decrease tendency would be caused by the difference in performance between manufacturing units or between measuring units in the same manufacturing line. Also, sequentially-measured characteristic values are obtained from sequentially-manufactured products in the same manufacturing line. In this case, however, “sequentially-manufactured products” do not always mean all sequentially-manufactured products but every k-th ones (k=2,3, . . . ) of the sequentially-manufactured products upon which measuring operations are performed.
In the above-described second prior art abnormal characteristic value detecting method, however, even if measured characteristic values have a successively-alternate small increase/decrease tendency stably around the control center value, unnecessary alarm signals are generated to request unnecessary countermeasure operations.
According to the present invention, in a method for detecting abnormal characteristic values of at least three products sequentially manufactured in the same manufacturing line, it is determined whether or not a successively-alternate increase/decrease tendency has occurred in a plurality of sequentially-obtained characteristic values of the products. Also, it is determined whether or not at least one of the characteristic values is located within a control region narrower than an allowable region and outside a normal region narrower than the control region. Further, when the successively-alternate increase/decrease tendency has occurred and the at least one characteristic value is located within the control region outside the normal region, an alarm state is detected. In other words, even when the successively-alternate increase/decrease tendency has occurred, if no characteristic value is located within the control region outside the normal region, no alarm state is detected.
The present invention will be more clearly understood from the description set forth below, as compared with the prior art, with reference to the accompanying drawings, wherein:
Before the description of the preferred embodiment, prior art abnormal characteristic value detecting methods will now be explained with reference to
In
The allowable region is defined by a lower allowable limit value LAL and an upper allowable limit value UAL (>LAL) centered at a control center value CC. Also, the control region is included in the allowable region and is defined by a lower control limit value LCL (>LAL) and an upper control limit value UCL (<UAL) centered at the control center value CC. In this case, an alarm region is defined by the lower allowable limit value LAL and the lower control limit value LCL, and another alarm region is defined by the upper allowable limit value UAL and the upper control limit value UCL.
When a currently-measured or last characteristic value is outside the allowable region, a respective lot of this measured characteristic value is deemed to be defective, so that a defect signal is generated.
When a currently-measured or last characteristic value is within the allowable region but outside the control region, i.e., within one of the alarm regions, alarm signals are generated for the lots 16 and 17 as shown in
When a currently-measured or last characteristic value is within the control region, a respective lot of this measured characteristic value is deemed to be normal, so that no defect signal and no alarm signal are generated.
In the first prior art abnormal characteristic value detecting method of
In
Note that, if a successively-alternate large increase/decrease tendency occurs as illustrated in
For example, in order to form a silicon dioxide layer on a semiconductor substrate, thermal oxidation units, chemical vapor deposition (CVD) units or sputtering units are used as manufacturing units, and ellipsometers or the like are used as characteristic value (silicon dioxide thickness) measuring units. For example, if two thermal oxidation units U1 and U2 and one ellipsometer are used, the above-mentioned large successively-alternate increase/decrease tendency indicates that there is a difference in performance between the thermal oxidation units U1 and U2. Therefore, manufacturing process engineers search for an abnormal portion in the thermal oxidation units.
In the second prior art abnormal characteristic value detecting method of
In
A memory section 2 stores not only measured characteristic values and other temporary data, but also constants and programs.
A determining section 3 is constructed by an allowable region determining section 31, a control region determining section 32, a successively-alternate increase/decrease tendency determining section 33 and a normal region determining section 34.
The allowable region determining section 31 determines whether or not a measured characteristic value is located within an allowable region defined by a lower allowable limit value LAL and an upper allowable limit value UAL centered at a control center value CC as shown in
When the measured characteristic value is located within the allowable region, the control region determining section 32 determines whether or not the measured characteristic value is located within a control region defined by a lower control limit value LCL and an upper control limit value UCL centered at the control center value CC as shown in
LAL<LCL<CC
CC<UCL<UAL
When the measured characteristic value is located within the control region, the successively-alternate increase/decrease tendency determining section 33 determines whether or not there is a fourteen-successively-alternate increase/decrease tendency in the measured characteristic values.
When there is a fourteen-successively-alternate increase/decrease tendency in the measured characteristic values, the normal region determining section 34 determines whether or not at least one of the measured characteristic values is located within a normal region defined by a lower normal limit value LNL and an upper normal limit value UNL as shown in
LCL<LNL<CC
CC<UNL<UCL
An abnormal signal generating section 4 is constructed by a defect signal generating section 41 and an alarm signal generating section 42.
When the currently-measured or last characteristic value is determined to be located outside the allowable region, the defect signal generating section 41 generates a defect signal adapted to activate a first sound element or a first visual element (not shown).
When the currently-measured or last characteristic value is determined to be located within the allowable region but outside the control region, and when at least one of the measured characteristic values is within the control region but outside the normal region when a fourteen-successively-alternate increase/decrease tendency occurs therein, the alarm signal generating section 42 generates an alarm signal adapted to activate a second sound element or a second visual element (not shown).
In
CC−LCL=UCL−CC=3 σ
CC−LNL=UNL−CC=σ
where σ is a standard deviation of the measured characteristic values if they have a normal distribution within the allowable region.
The memory section 2, the determining section 3 and the abnormal signal generating section 4 of
First, at step 901, it is determined whether or not the measured characteristic value M is within the allowable region, i.e.,
LAL<M<UAL.
As a result, when the measured characteristic value M is not within the allowable region (M≦LAL or M≧UAL), the control proceeds to step 902 which resets the increase/decrease counter value CM and the out-of-normal-region counter value CN (CM=CN=0). Also, at step 903, a defect signal is generated. As a result, a respective lot of this measured characteristic value is deemed to be defective.
On the other hand, at step 901, when it is determined that the measured characteristic value M is within the allowable region (LAL<M<UAL), the control proceeds to step 704 which determines whether or not the measured characteristic value M is within the control region, i.e.,
LCL<M<UCL.
As a result, when the measured characteristic value M is not within the control region (M≦LCL or M≧UCL), the control proceeds to step 905 which resets the increase/decrease counter value CM and the out-of-normal-region counter value CN (CM=CN=0). Also, at step 906, an alarm signal is generated. As a result, a countermeasure operation would be carried out.
On the other hand, at step 904, when it is determined that the measured characteristic value M is within the control region (LCL<M<UCL), the control proceeds to step 907 which determines whether or not the measured characteristic value M is smaller than M0, equal to M0, or larger than M0. As a result, when M<M0 (decrease state), the control proceeds to steps 908 through 916. Also, when M>M0 (increase state), the control proceeds to steps 917 through 925. Further, when M=M0, the control proceeds directly to step 926.
At step 908, it is determined whether or not the increase/decrease flag FX is “1” (increase state). Only when FX=“1” which means the characteristic values are switched from an increase state to a decrease state, does the control proceed to step 909 which increases the increase/decrease counter value CN by 1, i.e., CN=CN+1, and then, at step 910, the increase/decrease flag is reset (FX=“0”). Otherwise, the control proceeds directly to step 926.
Next, at step 911, it is determined whether or not M<LNL, i.e., the last measured characteristic value M is within the normal region. As a result, only when M<LNL, does the control proceed to step 912 which increments the out-of-normal-region counter value CN by +1. Then, as step 913, it is determined whether or not CM≧14, i.e., a fourteen-successively-alternate increase/decrease tendency occurs in the measured characteristic values. Only when CM≧14, does the control proceed to step 914 which resets the increase/decrease counter value CM, i.e., CM=0. Then, at step 915, it is determined whether or not CN≧1. Only when CN≧1, does the control proceed to step 916 which resets the counter value CN, and then proceed to step 906 which generates an alarm signal. Thus, when the fourteen successively-alternate increase/decrease tendency occurs and at least one of the characteristic values is within the control region outside the normal region, an alarm signal is generated.
On the other hand, at step 917, it is determined whether or not the increase/decrease flag FX is “0” (decrease state). Only when FX=“0” which means the characteristic values are switched from an decrease state to an increase state, does the control proceed to step 918 which increases the increase/decrease counter value CN by 1, i.e., CN=CN+1, and then, at step 919, the increase/decrease flag is set (FX=“1”). Otherwise, the control proceeds directly to step 926.
Next, at step 920, it is determined whether or not M>UNL, i.e., the last measured characteristic value M is within the normal region. As a result, only when M>UNL, does the control proceed to step 921 which increments the out-of-normal-region counter value CN by +1. Then, as step 922, it is determined whether or not CM≧14, i.e., a fourteen-successively-alternate increase/decrease tendency occurs in the measured characteristic values. Only when CM>14, does the control proceed to step 923 which resets the increase/decrease counter value CM, i.e., CM=0. Then, at step 924, it is determined whether or not CN≧1. Only when CN≧1, does the control proceed to step 925 which resets the counter value CN, and then proceed to step 906 which generates an alarm signal. Thus, in this case, when the fourteen successively-alternate increase/decrease tendency occurs and at least one of the characteristic values is within the control region outside the normal region, an alarm signal is generated.
The control at steps 903 and 906 proceeds to step 926. Also, when the out-of-normal-region counter value CN is 0 at step 915 or 924, the control proceeds to step 926. At step 926, the previously-measured characteristic value M0 is replaced by the currently-measured characteristic value M, and the control proceeds to step 927 which prepares for the next measured characteristic value fetch request signal.
According to a first example as illustrated in
According to a second example as illustrated in
According to a third example as illustrated in
In
In
Note that the value “14” of steps 913 and 927 of
Number | Date | Country | Kind |
---|---|---|---|
2005-203638 | Jul 2005 | JP | national |