WO1996002033A1 - Procede d'ecriture d'un programme pour une entreprise specifique - Google Patents
Procede d'ecriture d'un programme pour une entreprise specifique Download PDFInfo
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- WO1996002033A1 WO1996002033A1 PCT/JP1995/001391 JP9501391W WO9602033A1 WO 1996002033 A1 WO1996002033 A1 WO 1996002033A1 JP 9501391 W JP9501391 W JP 9501391W WO 9602033 A1 WO9602033 A1 WO 9602033A1
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F8/00—Arrangements for software engineering
- G06F8/30—Creation or generation of source code
- G06F8/31—Programming languages or programming paradigms
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F8/00—Arrangements for software engineering
- G06F8/30—Creation or generation of source code
Definitions
- the present invention relates to a method of manufacturing a program for realizing a business processing system for a specific task by a computer.
- the applicant of the present invention has proposed an epoch-making development method that fundamentally reverses a conventional program creation method in Japanese Patent Application Laid-Open No. Hei 6-332678. That is, according to the disclosure of the above-mentioned Japanese application, in a method for manufacturing a specific business program, a logical body is made into a two-layered structure of control logic (FAL) and business processing logic (ASL), and a FAL program that does not include business processing logic.
- FAL control logic
- ASL business processing logic
- This is a development method in which ASL programs containing only business processing logic are created substantially separately, and the target programs are created by combining them.
- the present invention is based on the development method disclosed in the Japanese application described above. Therefore, prior to the description of the method for manufacturing a specific business program according to the present invention, an outline of the above-described development method will be described.
- the two-tier type is based on three concepts: the definition concept, the FAL concept, and the ASL concept.
- the definition field is a collection of definition field items (business terms) collected within a certain range
- FAL determines the form according to the definition field
- ASL defines the definition field belonging to the definition field. Based on the item.
- the details of these three concepts are They can be performed in parallel with their independence, and by combining them, the target program is obtained.
- the control logic FAL (Flame of Application Logical) is a logic that controls the definition field and is composed of two elements, a branch route sorting logic and a link statement that activates the business processing logic (ASL). Since it does not include any business processing logic, its logical design is simplified.
- a SL (Applicati on al Segment of Logic) is a logical body for business processing only, and extracts the definition body item, which is the item name given to various data items to be processed. For each definition item, a single-function program segment is created in a format using the corresponding definition item as a keyword, and the individual segments are created in an independent format that has no mutual control relationship. The ordering of ASL is performed by FAL.
- the FAL program layer which is not affected by the content of the data item to which the definition item is assigned, and the ASL program layer for each definition item item related to the content of each data item, have a two-layer structure
- the FAL program layer eliminates the processing of data related to definition items that have many change factors, so the program structure of the FAL program layer is very transparent and easy to understand. Not affected. Therefore, the productivity of the FAL program layer is very high, and the variation in quality is small.
- the ASL program layer is a single function using the definition field as a keyword and consists of a set of small independent program segments, the logical contents of each segment are extremely simple and easy to create. There is little room for quality variation. For minor changes in the required specifications, the corresponding program Can be easily dealt with by changing the segment.
- a target program (source 'program) is created by synthesizing FAL and ASL obtained independently as described above. In this way, it can be easily implemented by many technicians, and it is possible to efficiently manufacture specific business programs without error regardless of the skill level of each technician.
- a program manufacturing method that can automatically generate a program is presented. Disclosure of the invention
- the present invention provides a more excellent method of realizing a specific business program by realizing further automation of the manufacturing process and improving the uniqueness of the resulting program. It is intended to do so.
- a method for manufacturing a specific business program extracts various definition items to be processed in a business processing system of a specific business, and has a single function with respect to each of the definition items.
- Program segments are created in a format that uses the relevant definition field as a keyword, and each ASL is created in an independent format that does not have a mutual control relationship.
- each Create a separate control program to organically combine ASLs, activate each required ASL using an array of link statements contained in the FAL, and synthesize the FAL and the ASL
- FAL separate control program
- the FAL that is required for the system is created in advance.
- the FAL configuration required for specific tasks is extracted from the FAL configuration in the maximum state, and individual FALs are created therefrom.
- FAL is a set of the definition field items.
- FAL (F 1) which controls the original input
- FAL (F 2) which processes the input data for a certain purpose
- FAL (F3) which outputs the final output
- F1 is interposed between the first and second definitions
- the F2 is interposed between the second and third definitions
- It is configured as an aggregate of a series of FAL data streams in which the above F 3 is interposed between the third definition body and the fourth definition body.
- all input definition bodies and all output definition bodies related to one FAL are determined.
- the set of definition fields consisting of A link sentence mesh arranged corresponding to each pox is created, and in each box of the link sentence mesh, a plurality of univocally determined definitions are defined from a definition body that is a logical start point and a definition body that is a logical end point.
- Each semantic value including a link statement is stored, and each of the semantic values is connected in a predetermined order, thereby forming a resource included in the FAL.
- the feature is that the arrangement of link statements is automatically determined.
- a plurality of link statement unit sequences in which one said semantics' value is a unit of a link statement unit sequence including a plurality of link statements and a branch instruction for realizing one data operation function. Characterized by the following.
- a predetermined connection order for connecting the semantics and values constituting the link sentence mesh is an order uniquely set based on a generation equation.
- the F A L data stream constitutes a unit of the software structure, and this F A L
- the FAL in the maximum state is constructed, whereby the most stable number of FALs and the location of the definition field can be defined.
- a FAL program including a link statement array for synthesizing FAL and ASL is mechanically created by using a link statement mesh that is uniquely created based on all of the input and output definitions of the FAL. Determined automatically.
- FIG. 1 is a configuration diagram of a FAL data stream of the present invention.
- FIG. 2 is a diagram showing a FAL configuration in a maximum state according to the present invention.
- FIG. 3 is a configuration diagram centered on the fission definition body requiring accumulation in FIG.
- FIG. 4 is a diagram corresponding to a specific user request to the diagram showing the FAL configuration in the maximum state in FIG.
- FIG. 5 is a detailed view of a FAL configuration of a necessary part in FIG.
- FIG. 6 is an explanatory diagram of the grounds representing the FAL configuration in the maximum state in FIG.
- FIG. 7 is an explanatory diagram of the grounds representing the FAL configuration in the maximum state in FIG.
- FIG. 8 is an explanatory diagram of the grounds representing the FAL configuration in the maximum state in FIG.
- FIG. 9 is an explanatory diagram of the grounds representing the FAL configuration in the maximum state of FIG.
- FIG. 10 is an explanatory diagram of the basis representing the FAL configuration in the maximum state of FIG.
- FIG. 11 is a configuration diagram showing an example of combining definition fields from the own input point and an example of combining definition fields from other input points.
- FIG. 12 is a diagram showing examples of various relations between one input definition body and one output definition body for one FAL.
- FIG. 13 is a diagram showing an example of a FAL having two input definition bodies A and B and one output definition body C.
- FIG. 14 is a diagram showing a link sentence mesh for the FAL in FIG.
- FIG. 15 is a diagram for explaining the semantecs value stored in each box of the link sentence mesh in FIG.
- Fig. 16 is an example showing the specific contents of the business requirements of each box of the link sentence mesh.
- FIG. 17 is a diagram showing F1, its associated definition body, and possible business requirements (a) to (d).
- FIG. 18 is a diagram showing a link sentence mesh in the case of F1 shown in FIG.
- FIG. 19 is a diagram showing F2, its associated definition body, and possible business requirements (a) to (d).
- FIG. 20 is a diagram showing a link sentence mesh in the case of F2 shown in FIG.
- FIG. 21 is a diagram showing F3 and its related definition bodies and possible business requirements (a) to (d).
- FIG. 22 is a diagram showing a link sentence mesh in the case of F3 shown in FIG.
- FIG. 23 is a diagram specifically showing the contents of the concept of each data operation function constituting general semantics' value.
- FIG. 24 is a diagram showing a link sentence mesh applied to a general FAL having n inputs and m outputs.
- FIG. 3 is a diagram showing the order of connection.
- FAL which is a control program that organically combines the above-mentioned ASLs, has the following three categories in order to give the definition field a fundamental starting and closing, and all FALs can be aggregated in this. it can.
- First data registration mechanism F1 is a program / logic that inputs one or more definitions and outputs one or more definitions, and the input definition always includes one or more semantics definitions.
- the semantics definition body is the definition body located on the human side in the MMI (man 'machine' interface). For example, input screens, output forms, and EUC files are also in this category. This definition can be directly influenced by human will.
- the following data editing mechanism: F2 is a program logic that inputs one or more syntax definitions and outputs only one syntax definition.
- the syntax definition field is the definition field located on the machine side in MMI. In other words, it is an internal definition, and its maintenance is performed by program logic, and humans do not directly influence the intention.
- F3 is a program logic that inputs one or more definitions and outputs one or more definitions.
- FALs Fl, F2, F3
- Fig. 1 The three types of FALs (Fl, F2, F3) described above, as shown in Fig. 1, They are connected via a total of four definition fields according to the logic that satisfies each category one condition, and form a unit of software structure. This is defined as a FAL data stream.
- constant 1 is a semantic definition
- constants 2, 3, and 4 are syntax definitions.
- Fl, F2, F3 By assembling the FAL data stream as this unit, the number of the most stable FALs including the maximum state of the development event and the location of the definition field can be defined based on one input point.
- the FAL data stream shown in Fig. 1 is a basic form of the FAL data stream connected via four definition fields, but some abbreviations such as the following can be considered depending on the conditions.
- constant 4 is a syntax definition field, which is already inside the computer. Represents the F3 output definition fetched.
- Constant 5 indicates a syntax definition field or a semantics definition field required by the user.
- the FAL data stream has the following five formats.
- Fig. 2 is a diagram showing the FAL configuration in the maximum state
- Fig. 3 is a configuration diagram focusing on the split definition in it.
- the configuration diagram centered on the split definition field in Fig. 3 shows the minimum state of the system and the maximum value.
- one split definition body (storage data file required) 11 returns the split to the main input 13 or the main output 15, and the split definition body 11 receives the other system input 14, the self input 12, and the self It consists of the presence of output 16. Focusing on this split definition, there are five types of FAL data streams as shown in Fig. 3.
- the split definition field 11 is a syntax definition field in the output definition field of F3 in the FAL data stream.
- the main input is a split definition field.
- F2 When splitting as an input of a syntax definition field in the own system, F2,? If the AL data stream of Fig. 3 leads to the split definition field of interest as an input, and if one split definition field is focused, F 3 In this case, the syntax definition field in the output definition field is connected to the target split definition field as an input with the FAL data stream of F2 and F3.
- F3 When focusing on the FAL configuration diagram in the maximum state, there are syntax definitions that split as inputs both on the own input point and on other input points.
- the other system input refers to one split definition field, and the self-output syntax definition field in the other system is input to the focused split definition field using the FAL and F3 FAL data streams. Is referred to as being connected.
- Self input refers to a certain splitting definition field, and the semantics definition field in the self system is connected as an input to the focused splitting definition field with Fl, F2, and F3 FAL data streams. Say the case.
- the main output is a split definition field that focuses on a certain 3 split definition fields and splits as an output of a syntax definition field within the self-system, with the FAL data stream of F2 and F3. Focusing on and one split definition field, and using the F2 data stream of F 2 and F 3 in the syntax definition field of the output definition field of F 3 in the own system This refers to a case where the split definition field of interest is connected as an output. Focusing on the FAL configuration diagram in the maximum state, there are syntax definitions that split as output both on the own input point and on other input points.
- Self-output refers to the case where the FAL data stream of F2 and F3 is completed in the own system by focusing on a certain split definition field.
- the F3 output definition of this FAL data stream is mainly a semantics definition.
- syntax definitions used directly by users and syntax definitions connected to other systems.
- the split definition body is represented by a relatively large file figure, and other transient definition bodies which do not require accumulation are represented by a small file figure.
- This definition field t1 contains In FIG. 2, data is stored from the self-input 12 via F1, F2, and F3 FAL data streams.
- the definition field t 1 and the like have a definition field K 1 via one FAL data stream, a definition field K 2 via two FAL data streams, and a definition field K 3 via three FAL data streams. Are located.
- the definition field Kl, ⁇ 2, ⁇ 3 is the output point.
- another definition body t2 via one FAL data stream is further arranged from the definition body t1, and also with respect to this definition body, the definition bodies Kl, ⁇ 2, and ⁇ 3 are arranged in the same manner as the definition body t1. Is done. Furthermore, similarly, the definition fields t3 and t4 are arranged, and the definition fields Kl, ⁇ 2, and ⁇ 3 are arranged, respectively. In some cases, up to the definition field t ⁇ is provided.
- the definition field t1 the total of 1 2 of the definition fields Kl, ⁇ 2, ⁇ 3, which are the output points for the definition fields t1, t2, t3, t4, respectively Output points are defined. Then, the user requirements in the specific business program are always arranged at these 12 output points. This means that it is sufficient to prepare a maximum of 12 output points for a single input point, and if there are more input points, this FAL configuration diagram is created for each. You. In other words, there are various systems in the software domain, but there are many FAL diagrams in the maximum state based on one input point.
- FIG. 2 representing the maximum FAL configuration
- the definition field t1 always exists because there is one FAL data stream starting from the semantics definition field.
- the FAL data stream has an optimization structure in data processing. By applying this concept, the optimization of data processing in temporal accumulation based on the definition of t1 is achieved. Structure exists. Then, as shown in FIG.
- the FAL configuration diagram of data processing in temporal storage is completed.
- the target output point definition is output by up to three FAL data streams. There are the following three ways to output the target output point definition.
- Kl Outputs the definition that is the target output point without requiring the accumulation for processing from the definition that represents the temporal accumulation of t1, t2, t3, and t4.
- K2 One definition for processing is required from the definition that represents the time accumulation of t1, t2, t3, and t4, and the definition that is the target output point is output.
- K3 Requires two accumulations for processing from the definition field that represents the time accumulation of t1, t2, t3, and t4, and outputs the definition field that is the target output point.
- FIG. 2 shows Kl, K2, and K3 for each of these 1: 1, t2, t3, and t4, and shows the FAL configuration in the maximum state described above.
- FIG. 4 is a diagram in which a specific user requirement is associated with the above-described diagram showing the FAL configuration in the maximum state.
- the input items are the April term budget input, the October term budget input, and the planning section remarks input, and the total budget request information and total budget
- the budget request list is arranged, and the non-gross budget request information and the non-gross budget A request list, income plan information, and income plan list are arranged.
- Other parts of the FAL configuration diagram in FIG. 4 are not used in this example.
- Output points (output forms, etc.) are presented as user requirements, but the output points always have time accumulation.
- the position of the t point is determined by rearranging the categories and the order of the categories.
- the definition of the t point is specified based on the definition of the output point belonging to each t point.
- the definition fields of t 3, t 2, and t l are specified sequentially from the definition field of t 4. Identify t1 and the semantics definition field in relation to the input point definition field t1 and the input semantics definition field, and t2, t3, t4 based on the input point definition field t1. Are sequentially identified.
- the number of definitions required by machining between each t-point and the definition of the output point is specified. Determine points.
- FIG. 5 is a detailed diagram of a FAL configuration of a necessary part in the above example.
- the parts (1) and (2) enclosed by broken lines are the FAL data streams shown in Fig. 3 for the split definition field t2, and (3) to (8) are the connections with other input points. It is due to.
- the FAL configuration diagram is created, and individual FALs are sequentially created based on this.
- FIG. 11 is a configuration diagram showing an example of combining definition fields from the own input point and an example of combining definition fields from other input points.
- Fig. 11 shows an example.
- the output definition (syntax definition) of F3 on the focused input point can be input in all F1 and F3.
- the output definition field of F 3 ( Syntax definition) is F2,? It can be input by interposing the 3 AL data stream. This intervening FAL data stream may or may not be directly inputtable.
- the FAL configuration in the maximum state can be assumed in advance without being bound by individual business processing.
- the FAL data stream constitutes a unit of the software structure, and by assembling the FAL streams, the FAL in the maximum state is constructed, so that the most stable number of FALs and the location of the definition field can be defined. I have.
- each FAL included in the optimal FAL configuration obtained mechanically by the above method and each ASL created in a process independent of the above FAL configuration creation process (creation of each ASL)
- each ASL created in a process independent of the above FAL configuration creation process For details of the method, refer to JP-A-6-332678.
- an instruction for activating the necessary ASL is incorporated in the FAL program.
- Such instructions pointing to these required ASLs to specify one or more ASLs will be included in the FAL program as an array of one or more link statements.
- One link statement includes the ID of the definition field (or the ID of the definition field) and the data operation function as information.
- one AS L is specified.
- the link sentence is a mechanism for incorporating AS L is there.
- the number of link statements related to one FAL is the number that expresses all business requirements that can occur based on all of the input definition and output definition of the FAL without excess or shortage.
- the present invention provides a method for determining the number and arrangement of required link statements in a FAL program mechanically, that is, automatically, rather than by an artificial operation.
- the sequence of link sentences required in one FAL program is uniquely determined.
- a method of determining a link statement in one FAL FAL program will be described with reference to FIGS. 12 to 25.
- FIG. 12 is a diagram showing examples of various relations between one input definition body and one output definition body for one FAL.
- FIG. 12 (a) shows a FAL having one input definition A and one output definition B
- FIG. 12 (b) shows two input definitions A and B and one output definition.
- FIG. 12 (c) shows a FAL having one input definition A and two output definitions C and D
- FIG. 12 (d) shows a two Input definitions A and B and two output definitions Shows FAL with bodies C and D. Since each of these FALs has a different relationship between the input and output definitions, each has a different FAL program, that is, an array of link statements.
- a "link sentence mesh” is used to determine the arrangement of link sentences in each of these FALs.
- the determination of the link sentence using the link sentence mesh can be applied to any FAL, and can be executed mechanically, that is, automatically.
- a link sentence mesh is a mesh-like table that contains all the business requirements that may occur based on all of the FAL's input and output definitions as elements (boxes).
- the business requirements that may occur may be indicated by arrows 21 to 29. Arrows indicate the flow from the start point to the end point of the logic applied to the definition field. That is, each business requirement is converted into a definition field item belonging to the end point of the arrow by executing a predetermined edit (one or more data operation functions) on the definition field item belonging to the definition field at the start point of the arrow. It is something to convert.
- FIG. 14 is a diagram showing a link sentence mesh for the FAL in FIG.
- the FAL in Fig. 13 has three definitions A, B, and C, and the number of all combinations of a pair of definitions starting from any of them is the number of all business requirements described above. Matches. The number of combinations of this pair of definition fields is the number of overlapping permutations of all the definition fields including the input definition field and the output definition field.
- the starting point definition field is arranged in the vertical column
- the end point definition field is arranged in the horizontal column
- the starting point and the end point are defined.
- each business requirement corresponds to each box.
- Each box stores one “semantics' value” that describes the business requirements.
- Semantics' Value is an array of multiple link statements required to realize one or more data processing functions corresponding to the business requirements in an appropriate order.
- the role of the link sentence mesh in FAL is to determine the number of semantics' values and their locations.
- FIG. 15 is a diagram for explaining the semantics and values stored in the boxes 21 to 29 of the link sentence mesh in FIG.
- box 21 stores the semantics' value of the business requirement by editing the item of the definition field A and making it the same item of the definition field A.
- the specific contents of this semantics' value are uniquely and automatically determined once the definition of the start point and the definition of the end point are determined.
- Fig. 16 is an example showing the specific contents of the business requirements of each box of the link sentence mesh.
- the edit contents of a box for example, boxes (A, A) and (B, B)
- the edit content of the box at the intersection of the input definition body A as the starting point and the output definition body C as the end point is for editing from the input definition body A to the output definition body C.
- Some of the boxes included in the link text mesh are meaningless. For example, a box starting at output definition C and ending at input definition A is empty. This is because business requirements with such a starting point and an end point are not usually possible.
- the link sentence mesh development order is the order for connecting the semantics' values of each box of the link sentence mesh in a predetermined order when creating the target FAL program. This development order will be described later in detail.
- FIG. 18 is a diagram showing a link sentence mesh in the case of F1 shown in FIG.
- box 31 of the link sentence mesh in FIG. 18 stores a semantics-value that describes a business requirement whose logical start point and logical end point are both semantic definitions ⁇ : (input).
- a rule usually consists of the concept of multiple data action functions.
- the concept of a data operation function is a set of several instructions for implementing one data operation function, and includes a branch instruction related to a control logic value in addition to a link statement for the data operation function. This set of instructions corresponding to the concept of one data operation function is called a "link statement unit sequence".
- the link statement unit sequence will be specifically described later.
- the data operation function is a logical segment constituting the logic of the ASL program.
- S1 indicates input condition check
- S2 indicates existence tolerance check
- S3 indicates logical expression check
- S4 indicates processing movement function
- S5 indicates definition body input / output processing function.
- S1 indicates input condition check
- S2 indicates existence tolerance check
- S3 indicates logical expression check
- S4 indicates processing movement function
- S5 indicates definition body input / output processing function.
- the scope of the data operation function to which the link sentence mesh according to the present invention is applied does not include S5.
- Linked statement meshes involve data manipulation functions that edit data in a given memory into data in another (or the same) memory, whereas S5 is a physical storage This is because it is a data function that performs input and output between the device and the memory.
- S 4 is also included in the semantics' concept of other data-processing functions in the context of the branch instruction. Therefore, there are three concepts of S1 concept, S2 concept, and S3 concept as the semantics-value data action function applied as the link sentence mesh.
- the semantics-value of each box in the link sentence mesh takes the form of an array of necessary data processing functions.
- Box 31 in FIG. 18 is composed of the concepts S1, S2 and S3, and boxes 32, 33 and 34 are composed of the concepts S2 and S3.
- the concept of S 1 applies only to the input of the semantics definition field, so it can only exist in the FAL program of F 1.
- FIG. 19 is a diagram showing F2 and its related definitions (both are syntax definitions) and the possible business requirements 41-44.
- FIG. 20 is a diagram showing a link sentence mesh in the case of F2 shown in FIG. Each box is composed of the S2 concept and the S3 concept.
- FIG. 21 is a diagram showing F3 and its related definitions (the two definitions of syntax definition and semantics (output)) and the possible business requirements 51 to 54.
- FIG. 22 is a diagram showing a link sentence mesh in the case of F3 shown in FIG. Each box consists of the S2 concept and the S3 concept.
- FIG. 3 is a diagram specifically showing the contents of a concept of a function.
- Reference numeral 60 indicates each data operation function concept. S5 is not included in the link sentence mesh, but is listed as one of the concepts of semantics-value data operation function.
- Reference numeral 60a indicates the contents of the link statement unit sequence corresponding to the concept of each data operation function. This includes a branch instruction related to the control logic value on the FAL in addition to the data operation function. Since the contents of the link statement unit sequence are known, the semantic value is uniquely determined if the concept of the data operation function that composes it is determined.
- Reference numeral 60b expresses the contents of each link sentence unit sequence using an actual link sentence format. As described above, there are three possible components of the semantics-value contained in the link sentence mesh: the concept S1, concept S2, and concept S3.
- FIG. 24 is a diagram showing a link sentence mesh applied to a general FAL having n inputs and m outputs. All number of the link statement mesh boxes, overlapping permutation (n + m) ⁇ 2 i.e. (n + m) is two. Each box stores a semantic value (SZV) that is uniquely and mechanically determined from its input and output definitions, and automatically generates a link statement mesh.
- SZV semantic value
- Figure 25 shows the connection order of the semantics and values of each box.
- the connection order of each semantics' value is It is given by the following generation equations (1 :) to (6). (1) ⁇ n, y ⁇ n, x ⁇ y,
- n (x— 1) + (n + 1) — y nx + l -y (2) If x ⁇ n, y ⁇ n, x> y,
- n (x— 1) + (n + 2)-y nx + l -y
- a FAL configuration required for a specific task is extracted from a maximum FAL configuration created in advance, and from there, Since individual FALs are created, the best FAL configuration can be obtained mechanically.
- each FAL program can be obtained.
- the process of creating the above FAL configuration, the process of creating a FAL program by creating a link statement mesh for each FAL, and the subsequent process of creating a source program can be executed automatically, and at the same time, mechanically and The result is univocally obtained. Therefore, these processes can be performed continuously without interruption.
- there are no manual steps in the process during this time that is, steps that depend on the abilities and intentions of the creator. As a result, there is no error irrespective of the skill level of each engineer. Specific business programs can be manufactured efficiently.
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Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
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US08/532,819 US5809304A (en) | 1994-07-12 | 1995-07-12 | Method of designing application-oriented program |
EP95925112A EP0722140A4 (en) | 1994-07-12 | 1995-07-12 | METHOD FOR WRITING A PROGRAM FOR A SPECIFIC COMPANY |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
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JP6/182906 | 1994-07-12 | ||
JP18290694 | 1994-07-12 |
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WO1996002033A1 true WO1996002033A1 (fr) | 1996-01-25 |
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PCT/JP1995/001391 WO1996002033A1 (fr) | 1994-07-12 | 1995-07-12 | Procede d'ecriture d'un programme pour une entreprise specifique |
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EP (1) | EP0722140A4 (ja) |
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WO1997048043A1 (en) * | 1996-06-11 | 1997-12-18 | Codd Edgar F | Delta model processing logic representation and execution system |
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GB2320111A (en) * | 1996-12-06 | 1998-06-10 | Jba Holdings Plc | Data processing system and method for software development/configuration |
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- 1995-07-12 EP EP95925112A patent/EP0722140A4/en not_active Withdrawn
- 1995-07-12 WO PCT/JP1995/001391 patent/WO1996002033A1/ja not_active Application Discontinuation
- 1995-07-12 US US08/532,819 patent/US5809304A/en not_active Expired - Fee Related
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JPH03286226A (ja) * | 1990-03-31 | 1991-12-17 | Hitachi Software Eng Co Ltd | プログラム生成方法及びシステム |
JPH04172529A (ja) * | 1990-11-07 | 1992-06-19 | Hitachi Ltd | データ中心型ソフトウエア部品によるプログラム自動生成方式 |
JPH05233242A (ja) * | 1991-12-26 | 1993-09-10 | Software Kouchiku Kagaku Kenkyusho:Kk | 特定業務用プログラムの製造方法 |
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WO1997048043A1 (en) * | 1996-06-11 | 1997-12-18 | Codd Edgar F | Delta model processing logic representation and execution system |
US6421667B1 (en) | 1996-06-11 | 2002-07-16 | Edgar F. Codd | Delta model processing logic representation and execution system |
US6985900B2 (en) | 1996-06-11 | 2006-01-10 | Codd Edgar F | Delta model processing logic representation and execution system |
Also Published As
Publication number | Publication date |
---|---|
US5809304A (en) | 1998-09-15 |
EP0722140A4 (en) | 1997-03-05 |
EP0722140A1 (en) | 1996-07-17 |
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